TECHNICAL FIELD
[0001] The present invention relates to the field of communications technologies, and in
particular, to an uplink data transmission method and a related device.
BACKGROUND
[0002] In a Long Term Evolution (Long Term Evolution, LTE) system, transmission of uplink
services is based on scheduling by a base station. A basic time unit of scheduling
is a subframe. A subframe includes a plurality of time domain symbols. A specific
scheduling procedure is: A base station sends a control channel, for example, a physical
downlink control channel (Physical Downlink Control Channel, PDCCH) or an enhanced
physical downlink control channel (Enhanced PDCCH, EPDCCH). The control channel may
carry scheduling information of a physical uplink shared channel (Physical Uplink
Shared Channel, PUSCH). The scheduling information includes control information such
as resource allocation information and an adjustment and coding scheme. A terminal
(User Equipment, UE) detects the control channel in a subframe, and receives a downlink
data channel or sends an uplink data channel based on the scheduling information carried
on the detected control channel.
[0003] In an evolved LTE system (LTE-A), a carrier aggregation (CA) technology is introduced.
That is, resources of a plurality of component carriers (Component Carrier, CC) may
be simultaneously allocated to one UE for use, to achieve a higher peak rate and meet
a higher service requirement. Further, because radio communications systems and operators
are not limited in use in an unlicensed (Unlicensed) spectrum, if LTE devices are
applied to an unlicensed spectrum, not only resources in the unlicensed spectrum can
be effectively used, but also more effective radio access can be provided and requirements
of increasing mobile broadband services can be met. One of feasible solutions for
an LTE system to use an unlicensed spectrum is that the unlicensed spectrum is used
as a secondary cell (SCell) spectrum resource of an LTE base station. In addition,
a cell in a licensed spectrum is used as a primary cell (PCell).
[0004] In an unlicensed spectrum resource, there is a case in which a plurality of operators
of various communications systems expect to occupy a same spectrum. To achieve a coexistence
feature that the plurality of communications systems are not affected by each other
when occupying the unlicensed spectrum resource, a radio communications device needs
to use a listen before talk (Listen Before Talk, LBT) rule when occupying the unlicensed
spectrum for communication. That is, before using a channel, the device first listens
whether the channel is idle, and if the channel is idle, the device may use the channel
in the unlicensed spectrum. The device may perform clear channel assessment (Clear
Channel Assessment, CCA) through energy detection, to determine whether the detected
channel is idle.
[0005] In an LTE system, a base station uses a sounding reference signal (Sounding Reference
Signal, SRS) to estimate uplink channel quality in different frequency bands. Schedulers
on the base station side may allocate, based on an uplink channel status estimate,
resource blocks (Resource Block, RB) having a desirable instantaneous channel status
to uplink PUSCHs of UE for transmission, and may select different transmission parameters
(for example, an instantaneous data rate) and select different parameters related
to uplink multi-antenna transmission to selectively schedule uplink frequencies. The
SRS may be further used to estimate uplink timing (timing), and assuming that a downlink
channel and an uplink channel benefit from each other, especially in TDD, downlink
channel quality is estimated by using channel symmetry. In LTE, two types of SRS transmission
are defined: a periodic SRS (periodic SRS) and an aperiodic SRS. The periodic SRS
corresponds to a trigger type 0, and the aperiodic SRS corresponds to a trigger type
1. A set of subframe numbers that are in a system frame (10 ms) in a cell and that
may be used to send an SRS needs to satisfy: └
ns/2┘mod
TSFC ∈ Δ
SFC. Δ
SFC is an offset value, of a subframe that is used to send an SRS in a system frame (10
ms), relative to a location of a start subframe in the system frame. └
ns/2┘ is a subframe number,
ns is a timeslot number, and
TSFC is a period of sending an SRS by user equipment. Values of
TSFC and Δ
SFC are information that is configured by an access network device for the user equipment
and that is carried in a subframe configuration parameter "srs-SubframeConfig" used
to send an SRS. The periodic SRS and the aperiodic SRS each have an independent configuration
parameter "srs-SubframeConfig".
[0006] In an existing technical solution, if an SRS is sent in a subframe, the SRS occupies
the last symbol of the subframe. If the last single-carrier frequency-division multiple
access (Single-carrier Frequency-Division Multiple Access, SC-FDMA) symbol is allocated
to the SRS, the symbol cannot be used in PUSCH transmission. To avoid conflicts between
SRS transmission and PUSCH transmission of different UEs, all UEs should avoid sending
a PUSCH in the last SC-FDMA symbol of the subframe in which the SRS is sent. All UEs
in a cell should know that in which subframe set, UE may send an SRS. Therefore, an
SRS subframe is configured at a cell level. In this way, all the UEs can avoid sending
a PUSCH in the last SC-FDMA symbol of each of the subframes.
[0007] According to the existing technical solution, if an SRS is sent in a first uplink
subframe that is configured by using a cell-level parameter, a PUSCH sent by first
UE in the first uplink subframe does not occupy the last symbol, avoiding interference
between the PUSCH and an SRS sent by another UE. However, on a carrier in an unlicensed
spectrum, it is opportunistic whether UE can occupy a channel to send a signal. If
a base station configures at least one UE to send an SRS in the first uplink subframe,
but, based on a listening result, the UE cannot actually send an SRS in a symbol that
is configured for sending an SRS, the first UE does not occupy the last symbol of
the first uplink subframe. Consequently, when the last symbol starts, the first UE
stops occupying the carrier in the unlicensed spectrum. If the first UE is scheduled
to send a PUSCH in a next subframe of the first uplink subframe, the first UE needs
to re-detect a busy/idle status of a channel and strives for accessing the channel.
Because there are LTE systems or other radio communications systems deployed by a
plurality of operators in the unlicensed spectrum, it may be possible that the first
UE re-detects the busy/idle status of the channel but cannot re-obtain a channel access
opportunity, causing a decrease in transmission efficiency of uplink data in the unlicensed
spectrum.
[0008] For example, as shown in FIG. 1, FIG. 1 is a schematic diagram showing that UE is
scheduled to transmit a PDSCH in an unlicensed spectrum resource. If UE 1 is scheduled
to send a PUSCH in a subframe n, a subframe n+1, and a subframe n+2, and the subframe
n+1 is configured as a subframe for sending an SRS, based on the configuration, UE
2 sends an SRS in the last symbol of the subframe n+1. After performing clear channel
assessment (CCA) prior to the subframe n, the UE 1 determines that the channel can
be accessed, and starts to send a PUSCH from the subframe n. However, to avoid interference
with the SRS sent by the UE 2, the UE 1 has to stop sending a PUSCH in the last symbol
of the subframe n+1. Consequently, the UE 1 re-detects a busy/idle status of a channel
in the subframe n+2 and accessing the channel, and only after detecting that the channel
is idle, the UE 1 can send data in a subframe n+3.
SUMMARY
[0009] Embodiments of the present invention provide an uplink data transmission method and
a related device, to resolve a problem of a decrease in transmission efficiency of
uplink data in an unlicensed spectrum.
[0010] Specific technical solutions provided in the embodiments of the present invention
are as follows.
[0011] According to a first aspect, an embodiment of the present invention provides an uplink
signal transmission method, including:
receiving, by a terminal UE, signal sending indication information that is sent by
an access network device for an uplink subframe, where the signal sending indication
information is used to instruct the UE to send a sounding reference signal SRS in
a first symbol of the uplink subframe, and/or used to instruct the UE to send a PUSCH
in a symbol that is included in a second symbol set of the uplink subframe; and
sending, by the UE, an SRS and/or a PUSCH in the uplink subframe based on the signal
sending indication information.
[0012] In all possible implementations, the first symbol and/or the symbol that is included
in the second symbol set are/is sent to the UE by the access network device by using
the signal sending indication information; or
the first symbol and/or the symbol that is included in the second symbol set are/is
preconfigured for the UE by the access network device.
[0013] In all possible implementations, the method further includes:
determining, by the UE, first configuration information, where the first configuration
information includes indication information of a first symbol set and/or a candidate
symbol set group;
determining, by the UE, the first symbol in the first symbol set based on the signal
sending indication information; and/or
determining the second symbol set in the candidate symbol set group based on the signal
sending indication information.
[0014] In all possible implementations, the determining, by the UE, first configuration
information includes:
receiving, by the UE, the first configuration information sent by the access network
device; or
determining, by the UE, a type of the uplink subframe based on the signal sending
indication information, and determining the first configuration information corresponding
to the type of the uplink subframe based on a preset correspondence between the type
of the uplink subframe and the first configuration information.
[0015] In all possible implementations, the first symbol is any candidate symbol included
in the first symbol set, and the first symbol set includes at least one of the following
candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
[0016] In all possible implementations, the second symbol set is any candidate symbol set
included in the candidate symbol set group, and any candidate symbol set in the candidate
symbol set group includes K consecutive symbols, where K is a positive integer.
[0017] In all possible implementations, a value of K is 14, 13, 12, or 11.
[0018] In all possible implementations, the candidate symbol set group includes at least
one of the following candidate symbol sets:
a first candidate symbol set consisting of the 1st symbol to the last but three symbol of the uplink subframe;
a second candidate symbol set consisting of the 2nd symbol to the last but two symbol of the uplink subframe;
a third candidate symbol set consisting of the 3rd symbol to the last but one symbol of the uplink subframe;
a fourth candidate symbol set consisting of the 4th symbol to the last symbol of the uplink subframe;
a fifth candidate symbol set consisting of the 1st symbol to the last but two symbol of the uplink subframe;
a sixth candidate symbol set consisting of the 2nd symbol to the last but one symbol of the uplink subframe;
a seventh candidate symbol set consisting of the 3rd symbol to the last symbol of the uplink subframe;
an eighth candidate symbol set consisting of the 1st symbol to the last but one symbol of the uplink subframe;
a ninth candidate symbol set consisting of the 2nd symbol to the last symbol of the uplink subframe; and
a tenth candidate symbol set consisting of all symbols of the uplink subframe.
[0019] In all possible implementations, if the first symbol is the first candidate symbol,
the second symbol set includes A consecutive symbols, where a value of A is any one
of 11, 12, or 13; and/or
if the first symbol is the second candidate symbol, the second symbol set includes
B consecutive symbols, where a value of B is either of 11 or 12; and/or
if the first symbol is the third candidate symbol, the second symbol set includes
C consecutive symbols, where a value of C is any one of 11, 12, or 13; and/or
if the first symbol is the fourth candidate symbol, the second symbol set includes
D consecutive symbols, where a value of D is either of 11 or 12; and
the first candidate symbol is the 1
st symbol of the uplink subframe;
the second candidate symbol is the 2
nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe; and
the fourth candidate symbol is the last but one symbol of the uplink subframe.
[0020] In all possible implementations, if the first symbol is the first candidate symbol,
the second symbol set is any one of the third candidate symbol set, the sixth candidate
symbol set, the seventh candidate symbol set, and the ninth candidate symbol set;
and/or
if the first symbol is the second candidate symbol, the second symbol set is either
of the seventh candidate symbol set and the fourth candidate symbol set; and/or
if the first symbol is the third candidate symbol, the second symbol set is one of
the second candidate symbol set, the fifth candidate symbol set, the sixth candidate
symbol set, and the eighth candidate symbol set; and/or
if the first symbol is the fourth candidate symbol, the second symbol set is either
of the first candidate symbol set and the fifth candidate symbol set; and
the first candidate symbol is the 1
st symbol of the uplink subframe;
the second candidate symbol is the 2
nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe;
the fourth candidate symbol is the last but one symbol of the uplink subframe;
the first candidate symbol set consists of the 1
st symbol to the last but three symbol of the uplink subframe;
the second candidate symbol set consists of the 2
nd symbol to the last but two symbol of the uplink subframe;
the third candidate symbol set consists of the 3
rd symbol to the last but one symbol of the uplink subframe;
the fourth candidate symbol set consists of the 4
th symbol to the last symbol of the uplink subframe;
the fifth candidate symbol set consists of the 1
st symbol to the last but two symbol of the uplink subframe;
the sixth candidate symbol set consists of the 2
nd symbol to the last but one symbol of the uplink subframe;
the seventh candidate symbol set consists of the 3
rd symbol to the last symbol of the uplink subframe;
the eighth candidate symbol set consists of the 1
st symbol to the last but one symbol of the uplink subframe; and
the ninth candidate symbol set consists of the 2
nd symbol to the last symbol of the uplink subframe.
[0021] According to a second aspect, an embodiment of the present invention provides an
uplink signal transmission method, including:
sending, by an access network device, signal sending indication information for an
uplink subframe, where the signal sending indication information is used to instruct
a terminal UE to send a sounding reference signal SRS in a first symbol of the uplink
subframe, and/or used to instruct the terminal UE to send a PUSCH in a symbol that
is included in a second symbol set of the uplink subframe; and
receiving, by the access network device, an SRS and/or a PUSCH that are/is sent by
the UE in the uplink subframe based on the signal sending indication information.
[0022] In all possible implementations, the method further includes:
notifying, by the access network device by using the signal sending indication information,
the UE of the first symbol and/or the symbol that is included in the second symbol
set; or
preconfiguring, by the access network device, the first symbol and/or the symbol that
is included in the second symbol set for the UE.
[0023] In all possible implementations, the method further includes:
sending, by the access network device, first configuration information to the UE,
where the first configuration information includes indication information of a first
symbol set and/or a candidate symbol set group, the first symbol set includes at least
one candidate symbol of the first symbol, and the candidate symbol set group includes
at least one candidate symbol set of the second symbol set.
[0024] In all possible implementations, the first symbol is any candidate symbol included
in the first symbol set, and the first symbol set includes at least one of the following
candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
[0025] In all possible implementations, the second symbol set is any candidate symbol set
included in the candidate symbol set group, and any candidate symbol set in the candidate
symbol set group includes K consecutive symbols, where K is a positive integer.
[0026] In all possible implementations, a value of K is 14, 13, 12, or 11.
[0027] In all possible implementations, the candidate symbol set group includes at least
one of the following candidate symbol sets:
a first candidate symbol set consisting of the 1st symbol to the last but three symbol of the uplink subframe;
a second candidate symbol set consisting of the 2nd symbol to the last but two symbol of the uplink subframe;
a third candidate symbol set consisting of the 3rd symbol to the last but one symbol of the uplink subframe;
a fourth candidate symbol set consisting of the 4th symbol to the last symbol of the uplink subframe;
a fifth candidate symbol set consisting of the 1st symbol to the last but two symbol of the uplink subframe;
a sixth candidate symbol set consisting of the 2nd symbol to the last but one symbol of the uplink subframe;
a seventh candidate symbol set consisting of the 3rd symbol to the last symbol of the uplink subframe;
an eighth candidate symbol set consisting of the 1st symbol to the last but one symbol of the uplink subframe;
a ninth candidate symbol set consisting of the 2nd symbol to the last symbol of the uplink subframe; and
a tenth candidate symbol set consisting of all symbols of the uplink subframe.
[0028] In all possible implementations, if the first symbol is the first candidate symbol,
the second symbol set includes A consecutive symbols, where a value of A is any one
of 11, 12, or 13; and/or
if the first symbol is the second candidate symbol, the second symbol set includes
B consecutive symbols, where a value of B is either of 11 or 12; and/or
if the first symbol is the third candidate symbol, the second symbol set includes
C consecutive symbols, where a value of C is any one of 11, 12, or 13; and/or
if the first symbol is the fourth candidate symbol, the second symbol set includes
D consecutive symbols, where a value of D is either of 11 or 12; and
the first candidate symbol is the 1
st symbol of the uplink subframe;
the second candidate symbol is the 2
nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe; and
the fourth candidate symbol is the last but one symbol of the uplink subframe.
[0029] In all possible implementations, if the first symbol is the first candidate symbol,
the second symbol set is any one of the third candidate symbol set, the sixth candidate
symbol set, the seventh candidate symbol set, and the ninth candidate symbol set;
and/or
if the first symbol is the second candidate symbol, the second symbol set is either
of the seventh candidate symbol set and the fourth candidate symbol set; and/or
if the first symbol is the third candidate symbol, the second symbol set is one of
the second candidate symbol set, the fifth candidate symbol set, the sixth candidate
symbol set, and the eighth candidate symbol set; and/or
if the first symbol is the fourth candidate symbol, the second symbol set is either
of the first candidate symbol set and the fifth candidate symbol set; and
the first candidate symbol is the 1
st symbol of the uplink subframe;
the second candidate symbol is the 2
nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe;
the fourth candidate symbol is the last but one symbol of the uplink subframe;
the first candidate symbol set consists of the 1
st symbol to the last but three symbol of the uplink subframe;
the second candidate symbol set consists of the 2
nd symbol to the last but two symbol of the uplink subframe;
the third candidate symbol set consists of the 3
rd symbol to the last but one symbol of the uplink subframe;
the fourth candidate symbol set consists of the 4
th symbol to the last symbol of the uplink subframe;
the fifth candidate symbol set consists of the 1
st symbol to the last but two symbol of the uplink subframe;
the sixth candidate symbol set consists of the 2
nd symbol to the last but one symbol of the uplink subframe;
the seventh candidate symbol set consists of the 3
rd symbol to the last symbol of the uplink subframe;
the eighth candidate symbol set consists of the 1
st symbol to the last but one symbol of the uplink subframe; and
the ninth candidate symbol set consists of the 2
nd symbol to the last symbol of the uplink subframe.
[0030] According to a third aspect, an embodiment of the present invention provides a terminal,
including:
a receiving module, configured to receive signal sending indication information that
is sent by an access network device for an uplink subframe, where the signal sending
indication information is used to instruct the terminal UE to send a sounding reference
signal SRS in a first symbol of the uplink subframe, and/or used to instruct the UE
to send a PUSCH in a symbol that is included in a second symbol set of the uplink
subframe; and
a sending module, configured to send an SRS and/or a PUSCH in the uplink subframe
based on the signal sending indication information.
[0031] In all possible implementations, the first symbol and/or the symbol that is included
in the second symbol set are/is sent to the UE by the access network device by using
the signal sending indication information; or
the first symbol and/or the symbol that is included in the second symbol set are/is
preconfigured for the UE by the access network device.
[0032] In all possible implementations, the terminal further includes a processing module,
configured to:
determine first configuration information, where the first configuration information
includes indication information of a first symbol set and/or a candidate symbol set
group;
determine the first symbol in the first symbol set based on the signal sending indication
information; and/or
determine the second symbol set in the candidate symbol set group based on the signal
sending indication information.
[0033] In all possible implementations, the receiving module is further configured to receive
the first configuration information sent by the access network device; or
the processing module is further configured to: determine a type of the uplink subframe
based on the signal sending indication information, and determine the first configuration
information corresponding to the type of the uplink subframe based on a preset correspondence
between the type of the uplink subframe and the first configuration information.
[0034] In all possible implementations, the first symbol is any candidate symbol included
in the first symbol set, and the first symbol set includes at least one of the following
candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
[0035] In all possible implementations, the second symbol set is any candidate symbol set
included in the candidate symbol set group, and any candidate symbol set in the candidate
symbol set group includes K consecutive symbols, where K is a positive integer.
[0036] In all possible implementations, a value of K is 14, 13, 12, or 11.
[0037] In all possible implementations, the candidate symbol set group includes at least
one of the following candidate symbol sets:
a first candidate symbol set consisting of the 1st symbol to the last but three symbol of the uplink subframe;
a second candidate symbol set consisting of the 2nd symbol to the last but two symbol of the uplink subframe;
a third candidate symbol set consisting of the 3rd symbol to the last but one symbol of the uplink subframe;
a fourth candidate symbol set consisting of the 4th symbol to the last symbol of the uplink subframe;
a fifth candidate symbol set consisting of the 1st symbol to the last but two symbol of the uplink subframe;
a sixth candidate symbol set consisting of the 2nd symbol to the last but one symbol of the uplink subframe;
a seventh candidate symbol set consisting of the 3rd symbol to the last symbol of the uplink subframe;
an eighth candidate symbol set consisting of the 1st symbol to the last but one symbol of the uplink subframe;
a ninth candidate symbol set consisting of the 2nd symbol to the last symbol of the uplink subframe; and
a tenth candidate symbol set consisting of all symbols of the uplink subframe.
[0038] In all possible implementations, if the first symbol is the first candidate symbol,
the second symbol set includes A consecutive symbols, where a value of A is any one
of 11, 12, or 13; and/or
if the first symbol is the second candidate symbol, the second symbol set includes
B consecutive symbols, where a value of B is either of 11 or 12; and/or
if the first symbol is the third candidate symbol, the second symbol set includes
C consecutive symbols, where a value of C is any one of 11, 12, or 13; and/or
if the first symbol is the fourth candidate symbol, the second symbol set includes
D consecutive symbols, where a value of D is either of 11 or 12; and
the first candidate symbol is the 1
st symbol of the uplink subframe;
the second candidate symbol is the 2
nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe; and the fourth
candidate symbol is the last but one symbol of the uplink subframe.
[0039] In all possible implementations, if the first symbol is the first candidate symbol,
the second symbol set is any one of the third candidate symbol set, the sixth candidate
symbol set, the seventh candidate symbol set, and the ninth candidate symbol set;
and/or
if the first symbol is the second candidate symbol, the second symbol set is either
of the seventh candidate symbol set and the fourth candidate symbol set; and/or
if the first symbol is the third candidate symbol, the second symbol set is one of
the second candidate symbol set, the fifth candidate symbol set, the sixth candidate
symbol set, and the eighth candidate symbol set; and/or
if the first symbol is the fourth candidate symbol, the second symbol set is either
of the first candidate symbol set and the fifth candidate symbol set; and
the first candidate symbol is the 1
st symbol of the uplink subframe;
the second candidate symbol is the 2
nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe;
the fourth candidate symbol is the last but one symbol of the uplink subframe;
the first candidate symbol set consists of the 1
st symbol to the last but three symbol of the uplink subframe;
the second candidate symbol set consists of the 2
nd symbol to the last but two symbol of the uplink subframe;
the third candidate symbol set consists of the 3
rd symbol to the last but one symbol of the uplink subframe;
the fourth candidate symbol set consists of the 4
th symbol to the last symbol of the uplink subframe;
the fifth candidate symbol set consists of the 1
st symbol to the last but two symbol of the uplink subframe;
the sixth candidate symbol set consists of the 2
nd symbol to the last but one symbol of the uplink subframe;
the seventh candidate symbol set consists of the 3
rd symbol to the last symbol of the uplink subframe;
the eighth candidate symbol set consists of the 1
st symbol to the last but one symbol of the uplink subframe; and
the ninth candidate symbol set consists of the 2
nd symbol to the last symbol of the uplink subframe.
[0040] According to a fourth aspect, an embodiment of the present invention provides an
access network device, including:
a sending module, configured to send signal sending indication information for an
uplink subframe, where the signal sending indication information is used to instruct
a terminal UE to send a sounding reference signal SRS in a first symbol of the uplink
subframe, and/or used to instruct the terminal UE to send a PUSCH in a symbol that
is included in a second symbol set of the uplink subframe; and
a receiving module, configured to receive an SRS and/or a PUSCH that are/is sent by
the UE in the uplink subframe based on the signal sending indication information.
[0041] In all possible implementations, the access network device further includes a processing
module, specifically configured to:
notify, by using the signal sending indication information, the UE of the first symbol
and/or the symbol that is included in the second symbol set; or
preconfigure the first symbol and/or the symbol that is included in the second symbol
set for the UE.
[0042] In all possible implementations, the sending module is further configured to:
send first configuration information to the UE, where the first configuration information
includes indication information of a first symbol set and/or a candidate symbol set
group, the first symbol set includes at least one candidate symbol of the first symbol,
and the candidate symbol set group includes at least one candidate symbol set of the
second symbol set.
[0043] In all possible implementations, the first symbol is any candidate symbol included
in the first symbol set, and the first symbol set includes at least one of the following
candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
[0044] In all possible implementations, the second symbol set is any candidate symbol set
included in the candidate symbol set group, and any candidate symbol set in the candidate
symbol set group includes K consecutive symbols, where K is a positive integer.
[0045] In all possible implementations, a value of K is 14, 13, 12, or 11.
[0046] In all possible implementations, the candidate symbol set group includes at least
one of the following candidate symbol sets:
a first candidate symbol set consisting of the 1st symbol to the last but three symbol of the uplink subframe;
a second candidate symbol set consisting of the 2nd symbol to the last but two symbol of the uplink subframe;
a third candidate symbol set consisting of the 3rd symbol to the last but one symbol of the uplink subframe;
a fourth candidate symbol set consisting of the 4th symbol to the last symbol of the uplink subframe;
a fifth candidate symbol set consisting of the 1st symbol to the last but two symbol of the uplink subframe;
a sixth candidate symbol set consisting of the 2nd symbol to the last but one symbol of the uplink subframe;
a seventh candidate symbol set consisting of the 3rd symbol to the last symbol of the uplink subframe;
an eighth candidate symbol set consisting of the 1st symbol to the last but one symbol of the uplink subframe;
a ninth candidate symbol set consisting of the 2nd symbol to the last symbol of the uplink subframe; and
a tenth candidate symbol set consisting of all symbols of the uplink subframe.
[0047] In all possible implementations, if the first symbol is the first candidate symbol,
the second symbol set includes A consecutive symbols, where a value of A is any one
of 11, 12, or 13; and/or
if the first symbol is the second candidate symbol, the second symbol set includes
B consecutive symbols, where a value of B is either of 11 or 12; and/or
if the first symbol is the third candidate symbol, the second symbol set includes
C consecutive symbols, where a value of C is any one of 11, 12, or 13; and/or
if the first symbol is the fourth candidate symbol, the second symbol set includes
D consecutive symbols, where a value of D is either of 11 or 12; and
the first candidate symbol is the 1
st symbol of the uplink sub frame;
the second candidate symbol is the 2
nd symbol of the uplink sub frame;
the third candidate symbol is the last symbol of the uplink subframe; and
the fourth candidate symbol is the last but one symbol of the uplink subframe.
[0048] In all possible implementations, if the first symbol is the first candidate symbol,
the second symbol set is any one of the third candidate symbol set, the sixth candidate
symbol set, the seventh candidate symbol set, and the ninth candidate symbol set;
and/or
if the first symbol is the second candidate symbol, the second symbol set is either
of the seventh candidate symbol set and the fourth candidate symbol set; and/or
if the first symbol is the third candidate symbol, the second symbol set is one of
the second candidate symbol set, the fifth candidate symbol set, the sixth candidate
symbol set, and the eighth candidate symbol set; and/or
if the first symbol is the fourth candidate symbol, the second symbol set is either
of the first candidate symbol set and the fifth candidate symbol set; and
the first candidate symbol is the 1
st symbol of the uplink subframe;
the second candidate symbol is the 2
nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe;
the fourth candidate symbol is the last but one symbol of the uplink subframe;
the first candidate symbol set consists of the 1
st symbol to the last but three symbol of the uplink subframe;
the second candidate symbol set consists of the 2
nd symbol to the last but two symbol of the uplink subframe;
the third candidate symbol set consists of the 3
rd symbol to the last but one symbol of the uplink subframe;
the fourth candidate symbol set consists of the 4
th symbol to the last symbol of the uplink subframe;
the fifth candidate symbol set consists of the 1
st symbol to the last but two symbol of the uplink subframe;
the sixth candidate symbol set consists of the 2
nd symbol to the last but one symbol of the uplink subframe;
the seventh candidate symbol set consists of the 3
rd symbol to the last symbol of the uplink subframe;
the eighth candidate symbol set consists of the 1
st symbol to the last but one symbol of the uplink subframe; and
the ninth candidate symbol set consists of the 2
nd symbol to the last symbol of the uplink subframe.
[0049] According to a fifth aspect, an embodiment of the present invention further provides
an SRS transmission method, including:
sending, by an access network device, SRS sending indication information for an uplink
subframe to UE; and
receiving, by the access network device, an uplink signal of the UE in the uplink
subframe based on the SRS sending indication information.
[0050] In all possible implementations, if the SRS sending indication information instructs
to send an SRS in a first symbol of the uplink subframe, the access network device
receives the SRS in the first symbol of the uplink subframe; otherwise, the access
network device does not receive the SRS in the uplink subframe.
[0051] In all possible implementations, the first symbol is any candidate symbol included
in a first symbol set, and the first symbol set includes at least one of the following
candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
[0052] In all possible implementations, the SRS sending indication information belongs to
information on a common downlink control channel that is sent by the access network
device to at least two UEs.
[0053] In all possible implementations, the common downlink control channel is any one of
the following:
a physical downlink control channel sent in common search space of the physical downlink
control channel;
an enhanced physical downlink control channel sent in common search space of the enhanced
physical downlink control channel;
a common downlink control channel sent in a resource of a hybrid automatic retransmission
indicator physical channel; and
a common downlink control channel sent in a resource of a physical control format
indicator channel.
[0054] According to a sixth aspect, an embodiment of the present invention further provides
an SRS transmission method, including:
receiving, by UE, SRS sending indication information that is sent by an access network
device for an uplink subframe; and
determining, by the UE based on the SRS sending indication information, whether to
send an SRS in the uplink subframe.
[0055] In all possible implementations, the first symbol is any candidate symbol included
in a first symbol set, and the first symbol set includes at least one of the following
candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
[0056] According to a seventh aspect, an embodiment of the present invention further provides
an access network device, including:
a sending module, configured to send SRS sending indication information for an uplink
subframe to UE; and
a receiving module, configured to receive an uplink signal of the UE in the uplink
subframe based on the SRS sending indication information.
[0057] In all possible implementations, if the SRS sending indication information instructs
to send an SRS in a first symbol of the uplink subframe, the receiving module receives
the SRS in the first symbol of the uplink subframe; otherwise, the receiving module
does not receive the SRS in the uplink subframe.
[0058] In all possible implementations, the first symbol is any candidate symbol included
in a first symbol set, and the first symbol set includes at least one of the following
candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
[0059] In all possible implementations, the SRS sending indication information belongs to
information on a common downlink control channel that is sent by the sending module
to at least two UEs.
[0060] In all possible implementations, the common downlink control channel is any one of
the following:
a physical downlink control channel sent in common search space of the physical downlink
control channel;
an enhanced physical downlink control channel sent in common search space of the enhanced
physical downlink control channel;
a common downlink control channel sent in a resource of a hybrid automatic retransmission
indicator physical channel; and
a common downlink control channel sent in a resource of a physical control format
indicator channel.
[0061] According to an eighth aspect, an embodiment of the present invention provides a
terminal UE, including:
a receiving module, configured to receive SRS sending indication information that
is sent by an access network device for an uplink subframe; and
a sending module, configured to determine, based on the SRS sending indication information,
whether to send an SRS in the uplink subframe.
[0062] In all possible implementations, the first symbol is any candidate symbol included
in a first symbol set, and the first symbol set includes at least one of the following
candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
[0063] According to a ninth aspect, an embodiment of the present invention provides a terminal.
The terminal includes a processor, a memory, and a transceiver. The transceiver is
configured to send and receive data under control of the processor, the memory stores
a preset program, and the processor reads the program stored in the memory to perform
the following processes according to the program:
receiving, by using the transceiver, signal sending indication information that is
sent by an access network device for an uplink subframe, where the signal sending
indication information is used to instruct the terminal UE to send a sounding reference
signal SRS in a first symbol of the uplink subframe, and/or used to instruct the UE
to send a PUSCH in a symbol that is included in a second symbol set of the uplink
subframe; and
instructing the transceiver to send an SRS and/or a PUSCH in the uplink subframe based
on the signal sending indication information.
[0064] In all possible implementations, the first symbol and/or the symbol that is included
in the second symbol set are/is sent to the UE by the access network device by using
the signal sending indication information; or
the first symbol and/or the symbol that is included in the second symbol set are/is
preconfigured for the UE by the access network device.
[0065] In all possible implementations, the processor determines first configuration information,
where the first configuration information includes indication information of a first
symbol set and/or a candidate symbol set group; and
determines the first symbol in the first symbol set based on the signal sending indication
information, and/or determines the second symbol set in the candidate symbol set group
based on the signal sending indication information.
[0066] In all possible implementations, the processor receives, by using the transceiver,
the first configuration information sent by the access network device; or
the processor determines a type of the uplink subframe based on the signal sending
indication information, and determines the first configuration information corresponding
to the type of the uplink subframe based on a preset correspondence between the type
of the uplink subframe and the first configuration information.
[0067] According to a tenth aspect, an embodiment of the present invention further provides
an access network device, including a processor, a memory, and a transceiver. The
transceiver is configured to send and receive data under control of the processor,
the memory stores a preset program, and the processor reads the program stored in
the memory to perform the following processes according to the program:
instructing the transceiver to send signal sending indication information for an uplink
subframe, where the signal sending indication information is used to instruct a terminal
UE to send a sounding reference signal SRS in a first symbol of the uplink subframe,
and/or used to instruct the terminal UE to send a PUSCH in a symbol that is included
in a second symbol set of the uplink subframe; and
receiving, by using the transceiver, an SRS and/or a PUSCH that are/is sent by the
UE in the uplink subframe based on the signal sending indication information.
[0068] In a possible implementation, the processor notifies, by using the signal sending
indication information, the UE of the first symbol and/or the symbol that is included
in the second symbol set, or preconfigures the first symbol and/or the symbol that
is included in the second symbol set for the UE.
[0069] In a possible implementation, the processor is further configured to instruct the
transceiver to send first configuration information to the UE, where the first configuration
information includes indication information of a first symbol set and/or a candidate
symbol set group, the first symbol set includes at least one candidate symbol of the
first symbol, and the candidate symbol set group includes at least one candidate symbol
set of the second symbol set.
[0070] According to an eleventh aspect, an embodiment of the present invention provides
an access network device, including a processor, a memory, and a transceiver. The
transceiver is configured to send and receive data under control of the processor,
the memory stores a preset program, and the processor reads the program stored in
the memory to perform the following processes according to the program:
instructing the transceiver to send SRS sending indication information for an uplink
subframe to UE; and
instructing, based on the SRS sending indication information, the transceiver to receive
an uplink signal of the UE in the uplink subframe.
[0071] According to a twelfth aspect, an embodiment of the present invention provides a
terminal, including a processor, a memory, and a transceiver. The transceiver is configured
to send and receive data under control of the processor, the memory stores a preset
program, and the processor reads the program stored in the memory to perform the following
processes according to the program:
receiving, by using the transceiver, SRS sending indication information that is sent
by an access network device for an uplink subframe; and
determining, based on the SRS sending indication information for the uplink subframe,
whether to instruct the transceiver to send an SRS in the uplink subframe.
[0072] Based on the foregoing technical solutions, in the embodiments of the present invention,
the access network device notifies the UE of the signal sending indication information
for the uplink subframe, and indicates, by using the signal sending indication information,
a symbol of the uplink subframe for sending an SRS and/or a PUSCH; and the UE sends
an SRS and/or a PUSCH in the uplink subframe based on the symbol indicated by the
signal sending indication information. Therefore, the UE is dynamically scheduled
to send an SRS and/or a PUSCH in an uplink subframe of an unlicensed spectrum resource,
and a requirement that UEs detect a busy/idle status of a channel before the UEs send
a PUSCH in the unlicensed spectrum resource that is centrally scheduled by the access
network device is met, and interference of sending an SRS and/or a PUSCH between different
UEs can be avoided, thereby improving transmission efficiency of uplink data in the
unlicensed spectrum resource.
BRIEF DESCRIPTION OF DRAWINGS
[0073]
FIG. 1 is a schematic diagram showing that UE is scheduled to transmit a PDSCH in
an unlicensed spectrum resource in the prior art;
FIG. 2 is a schematic diagram of an uplink signal transmission process according to
an embodiment of the present invention;
FIG. 3 is a schematic diagram of a process of generating signal sending indication
information for an uplink subframe by an access network device according to an embodiment
of the present invention;
FIG. 4 is a schematic diagram of a location at which a busy/idle status of a channel
is listened in an uplink subframe according to an embodiment of the present invention;
FIG. 5 is a schematic diagram of a location at which a busy/idle status of a channel
is listened in another uplink subframe according to an embodiment of the present invention;
FIG. 6a is a schematic diagram of channel distribution in an uplink subframe according
to a first specific embodiment of the present invention;
FIG. 6b is a schematic diagram of channel distribution in another uplink subframe
according to the first specific embodiment of the present invention;
FIG. 6c is a schematic diagram of channel distribution in another uplink subframe
according to the first specific embodiment of the present invention;
FIG. 6d is a schematic diagram of channel distribution in another uplink subframe
according to the first specific embodiment of the present invention;
FIG. 6e is a schematic diagram of channel distribution in another uplink subframe
according to the first specific embodiment of the present invention;
FIG. 6f is a schematic diagram of channel distribution in another uplink subframe
according to the first specific embodiment of the present invention;
FIG. 6g is a schematic diagram of channel distribution in another uplink subframe
according to the first specific embodiment of the present invention;
FIG. 6h is a schematic diagram of channel distribution in another uplink subframe
according to the first specific embodiment of the present invention;
FIG. 6k is a schematic diagram of channel distribution in another uplink subframe
according to the first specific embodiment of the present invention;
FIG. 6m is a schematic diagram of channel distribution in another uplink subframe
according to the first specific embodiment of the present invention;
FIG. 7a is a schematic diagram of channel distribution in an uplink subframe according
to a second specific embodiment of the present invention;
FIG. 7b is a schematic diagram of channel distribution in another uplink subframe
according to the second specific embodiment of the present invention;
FIG. 7c is a schematic diagram of channel distribution in another uplink subframe
according to the second specific embodiment of the present invention;
FIG. 7d is a schematic diagram of channel distribution in another uplink subframe
according to the second specific embodiment of the present invention;
FIG. 8 is a schematic diagram of channel distribution in an uplink subframe according
to a third specific embodiment of the present invention;
FIG. 9 is a schematic diagram of channel distribution in another uplink subframe according
to the third specific embodiment of the present invention;
FIG. 10a is a schematic diagram of channel distribution in an uplink subframe according
to a fourth specific embodiment of the present invention;
FIG. 10b is a schematic diagram of channel distribution in another uplink subframe
according to the fourth specific embodiment of the present invention;
FIG. 10c is a schematic diagram of channel distribution in another uplink subframe
according to the fourth specific embodiment of the present invention;
FIG. 10d is a schematic diagram of channel distribution in another uplink subframe
according to the fourth specific embodiment of the present invention;
FIG. 11a is a schematic diagram of channel distribution in an uplink subframe according
to a fifth specific embodiment of the present invention;
FIG. 11b is a schematic diagram of channel distribution in another uplink subframe
according to the fifth specific embodiment of the present invention;
FIG. 12 is a schematic diagram of an SRS transmission process according to an embodiment
of the present invention;
FIG. 13 is a schematic structural diagram of a terminal according to an embodiment
of the present invention;
FIG. 14 is a schematic structural diagram of another terminal according to an embodiment
of the present invention;
FIG. 15 is a schematic structural diagram of a network side device according to an
embodiment of the present invention;
FIG. 16 is a schematic structural diagram of another network side device according
to an embodiment of the present invention;
FIG. 17 is a schematic structural diagram of another network side device according
to an embodiment of the present invention;
FIG. 18 is a schematic structural diagram of another network side device according
to an embodiment of the present invention;
FIG. 19 is a schematic structural diagram of another terminal according to an embodiment
of the present invention; and
FIG. 20 is a schematic structural diagram of another terminal according to an embodiment
of the present invention.
DESCRIPTION OF EMBODIMENTS
[0074] To make the objectives, technical solutions, and advantages of the present invention
clearer, the following further describes the present invention in detail with reference
to the accompanying drawings. Apparently, the described embodiments are merely some
rather than all of the embodiments of the present invention. All other embodiments
obtained by a person of ordinary skill in the art based on the embodiments of the
present invention without creative efforts shall fall within the protection scope
of the present invention.
[0075] In the embodiments of the present invention, to resolve a problem that in an unlicensed
spectrum resource, transmission efficiency of uplink data in the unlicensed spectrum
is decreased due to that UE does not send a PUSCH in the last symbol that is of an
uplink subframe and that is configured for sending an SRS, the following solution
is provided: An access network device notifies UE of signal sending indication information
for an uplink subframe, where the signal sending indication information indicates
a symbol that is of the uplink subframe and that is for sending an SRS and/or a PUSCH;
and the UE sends an SRS and/or a PUSCH in the uplink subframe based on the symbol
indicated by the signal sending indication information.
[0076] In the embodiments of the present invention, the access network device may be a base
station (eNB).
[0077] Based on this resolving idea, the present invention provides the following embodiments.
It should be noted that in all the embodiments provided in the present invention,
the symbol for sending a PUSCH includes a data symbol for sending a PUSCH and a symbol
for sending a demodulation reference signal that is used to demodulate the PUSCH.
[0078] In an embodiment of the present invention, a process of performing uplink signal
transmission in an unlicensed spectrum resource is shown in FIG. 2, and details are
as follows.
[0079] Step 201: An access network device sends signal sending indication information for
an uplink subframe, where the signal sending indication information is used to instruct
UE to send an SRS in a first symbol of the uplink subframe, and/or used to instruct
the UE to send a PUSCH in a symbol that is included in a second symbol set of the
uplink subframe.
[0080] Specifically, if an SRS and a PUSCH are simultaneously sent in a same uplink subframe,
locations of the first symbol and the symbol that is included in the second symbol
set do not overlap each other.
[0081] In the following embodiments, it is assumed that a next subframe of a first uplink
subframe is referred to as a second uplink subframe.
[0082] In this embodiment of the present invention, it is assumed that the access network
device needs to schedule UE 1 in the first uplink subframe to send a PUSCH and/or
an SRS. Depending on whether to schedule at least another one UE (using UE 2 as an
example) in the second uplink subframe to send data, the access network device determines
whether there is a need to reserve a time in the first uplink subframe, for example,
in the last symbol of the first uplink subframe, before the first uplink subframe
ends, for the UE 2 to detect a busy/idle status of a channel before the UE 2 sends
data in the second uplink subframe. Whether the time is reserved in the first uplink
subframe for the UE 2 to detect the busy/idle status of the channel before the UE
2 sends data in the second uplink subframe affects a length and/or a location of a
symbol occupied by the UE 1 to send a PUSCH and/or an SRS in the first uplink subframe.
Because the UE 1 cannot learn whether the access network device schedules the UE 2
in the second uplink subframe, and whether there is a need to reserve the time in
the first uplink subframe for the UE 2 to detect the busy/idle status of the channel
before the UE 2 sends data in the second uplink subframe, the UE 1 needs to determine,
based on the signal sending indication information that is sent by the access network
device for the first uplink subframe, the symbol that is included in the second symbol
set and that is for sending a PUSCH in the first uplink subframe and/or the first
symbol for sending an SRS in the first uplink subframe.
- (1) If the access network device schedules the UE 1 to send a PUSCH in the first uplink
subframe, and needs to reserve the last symbol of the first uplink subframe as the
time for the UE 2 to detect the busy/idle status of the channel, the PUSCH sent by
the UE 1 in the first uplink subframe cannot occupy the last symbol of the first uplink
subframe. The access network device sends the signal sending indication information
for the first uplink subframe to the UE 1, and instructs, by using the signal sending
indication information, the UE 1 to send a PUSCH in the symbol that is included in
the second symbol set in the first uplink subframe, where the second symbol set does
not include the last symbol of the first uplink subframe.
[0083] If there is no need to reserve the last symbol of the first uplink subframe as the
time for the UE 2 to detect the busy/idle status of the channel, the PUSCH sent by
the UE 1 in the first uplink subframe may occupy the last symbol of the first uplink
subframe. The access network device sends the signal sending indication information
for the first uplink subframe to the UE 1, and instructs, by using the signal sending
indication information, the UE 1 to send a PUSCH in the symbol that is included in
the second symbol set in the first uplink subframe, where the second symbol set includes
the last symbol of the first uplink subframe.
[0084] In addition, a quantity and locations of symbols that are included in the second
symbol set and that are used by the UE 1 to send a PUSCH in the first uplink subframe
may further depend on whether there is a symbol that is in the first uplink subframe
and that is used by the UE 1 and/or another UE to send an SRS, and whether there is
a symbol for the another UE to detect a busy/idle status of a channel before the another
UE sends an SRS in the first uplink subframe. The symbol that is included in the second
symbol set and that is used by the UE 1 to send a PUSCH in the first uplink subframe
does not include the symbol that is in the first uplink subframe and that is used
by the UE and/or the another UE to send an SRS, and the symbol used by the another
UE to detect the busy/idle status of the channel before the another UE sends an SRS
in the first uplink subframe.
[0085] Therefore, the UE 1 needs to determine, based on the signal sending indication information
that is sent by the access network device for the first uplink subframe, the symbol
that is included in the second symbol set and that is for sending a PUSCH in the first
uplink subframe.
(2) If the access network device schedules the UE 1 to send an SRS in the first uplink
subframe, and needs to reserve the last symbol of the first uplink subframe as the
time for the UE 2 to detect the busy/idle status of the channel, the UE 1 cannot occupy
the last symbol of the first uplink subframe to send an SRS in the first uplink subframe.
The access network device sends the signal sending indication information for the
first uplink subframe to the UE 1, and instructs, based on the signal sending indication
information, the UE 1 to send an SRS in one of other symbols than the last symbol
of the first uplink subframe.
[0086] If there is no need to reserve the last symbol of the first uplink subframe as the
time for the UE 2 to detect the busy/idle status of the channel, the UE 1 may occupy
the last symbol of the first uplink subframe to send a PUSCH in the first uplink subframe.
The access network device sends the signal sending indication information for the
first uplink subframe to the UE 1, and instructs, based on the signal sending indication
information, the UE 1 to send an SRS in the last symbol of the first uplink subframe.
[0087] Therefore, the UE 1 needs to determine, based on the signal sending indication information
that is sent by the access network devices for the first uplink subframe, the first
symbol for sending an SRS in the first uplink subframe.
(3) If the access network device schedules the UE 1 to send both a PUSCH and an SRS
in the first uplink subframe, the symbol that is included in the second symbol set
and that is used by the UE 1 to send a PUSCH in the first uplink subframe is affected
by whether the time is reserved in the first uplink subframe for the UE 2 to detect
the busy/idle status of the channel, and affected by a location of the first symbol
for sending an SRS in the first uplink subframe and a location of a symbol for another
UE to detect a busy/idle status of a channel before the another UE sends an SRS in
the first uplink subframe.
[0088] Therefore, the UE 1 needs to determine, based on the signal sending indication information
that is sent by the access network device for the first uplink subframe, the first
symbol for sending an SRS in the first uplink subframe and the symbol that is included
in the second symbol set and that is for sending a PUSCH in the first uplink subframe.
[0089] In this embodiment of the present invention, if the access network device needs to
schedule the UE 1 in the first uplink subframe to send a PUSCH and/or an SRS, and
needs to schedule the UE 2 in the first uplink subframe to send an SRS but not to
send a PUSCH, before scheduling the UE 2 in the first uplink subframe to send an SRS,
the access network device needs to reserve a time in the first uplink subframe for
the UE 2 to detect the busy/idle status of the channel before the UE 2 sends an SRS.
Whether the time is reserved in the first uplink subframe for the UE 2 to detect the
busy/idle status of the channel before the UE 2 sends an SRS in the first subframe
affects a length and/or a location of a symbol occupied by the UE 1 to send a PUSCH
and/or an SRS in the first uplink subframe.
[0090] Because the UE 1 cannot learn whether the access network device schedules the UE
2 to send an SRS in the first uplink subframe, and whether there is a symbol of the
first uplink sub frame for the UE or another UE to detect a busy/idle status of a
channel, the UE 1 needs to determine, based on the signal sending indication information
that is sent by the access network device for the first uplink subframe, the symbol
that is included in the second symbol set and that is for sending a PUSCH in the first
uplink subframe and/or the first symbol for sending an SRS in the first uplink subframe.
[0091] Further, a location at which the UE 1 is scheduled by the access network device to
detect a busy/idle status of a channel before the UE 1 sends data in the first uplink
subframe may be the 1
st symbol of the first uplink subframe, and whether the 1
st symbol of the first uplink subframe is reserved as the time for the UE 1 to detect
the busy/idle status of the channel affects a length and/or a location of a symbol
occupied by other UEs than the UE 1 to send a PUSCH and/or an SRS in the first uplink
subframe. Because the other UEs than the UE 1 cannot learn whether the access network
device schedules the UE 1 to send data in the first uplink subframe, and whether the
access network device reserves a time in the first uplink subframe for the UE 1 to
detect the busy/idle status of the channel before the UE 1 sends data, the other UEs
than the UE 1 need to determine, based on the signal sending indication information
that is sent by the access network device for the first uplink subframe, the symbol
that is included in the second symbol set and that is for sending a PUSCH in the first
uplink subframe, and/or the first symbol for sending an SRS in the first uplink subframe.
[0092] Using FIG. 3 as an example, if the access network device needs to schedule the UE
2 in the second uplink subframe to send data, and reserve the last symbol of the first
uplink subframe as a time for the UE 2 to detect a busy/idle status of a channel,
the access network device sends the signal sending indication information for the
first uplink subframe to the UE 1. The signal sending indication information may instruct
the UE 1 to send an SRS in the last but one symbol of the first uplink subframe. Certainly,
the signal sending indication information may also instruct the UE 1 to send a PUSCH
in other symbols than the last symbol and the last but one symbol of the first uplink
subframe, or instruct the UE 1 to send a PUSCH in other symbols than the last symbol
and the last but one symbol of the first uplink subframe and send an SRS in the last
but one symbol.
[0093] Step 202: The UE receives the signal sending indication information that is sent
by the access network device for the uplink subframe.
[0094] During implementation, the UE obtains the signal sending indication information that
is sent by the access network device for the uplink subframe, where the signal sending
indication information is indication information used to instruct the UE to send an
SRS in the first symbol of the uplink subframe, and/or indication information used
to instruct the UE to send a PUSCH in the symbol that is included in the second symbol
set of the uplink subframe.
[0095] Preferably, the access network device sends the signal sending indication information
for the uplink subframe to the UE by using physical layer channel information. For
example, the access network device sends the signal sending indication information
by using a PDCCH or an EPDCCH.
[0096] Optionally, the UE determines first configuration information, where the first configuration
information includes indication information of a first symbol set and/or a candidate
symbol set group. The first symbol, indicated by the signal sending indication information
that is sent by the access network device for the uplink subframe, for the UE to send
an SRS in the uplink subframe is a symbol in the first symbol set in the first configuration
information; and/or the second symbol set, indicated by the signal sending indication
information that is sent by the access network device for the uplink subframe, for
the UE to send a PUSCH in the uplink subframe is a set in the candidate symbol set
group in the first configuration information.
[0097] The UE determines, based on the signal sending indication information for the uplink
subframe, the first symbol in the first symbol set that is included in the first configuration
information, and/or determines, based on the signal sending indication information
for the uplink subframe, the second symbol set in the candidate symbol set group that
is included in the first configuration information.
[0098] During implementation, manners for the UE to determine the first configuration information
include but are not limited to the following two manners:
[0099] First, the UE receives the first configuration information sent by the access network
device.
[0100] Second, the UE determines a type of the uplink subframe based on the signal sending
indication information, and determines the first configuration information corresponding
to the type of the uplink subframe based on a preset correspondence between the type
of the uplink subframe and the first configuration information. Specifically, the
type of the uplink subframe may include two types: a type for sending an SRS and a
type not for sending an SRS.
[0101] For example, the preset correspondence between the type of the uplink subframe and
the first configuration information is as follows: If the type of the uplink subframe
is the type for sending an SRS, the first configuration information is: The first
symbol set includes {a candidate symbol A
1, a candidate symbol B
1, ..., and a candidate symbol N
1}, and/or the candidate symbol set group includes {a candidate symbol set O
1 including (a symbol P
1, a symbol P
2, ...), a candidate symbol set O
2 including (a symbol Q
1, a symbol Q
2, ...), and a candidate symbol set O
3 including (a symbol R
1, a symbol R
2, ...)}.
[0102] If the type of the uplink subframe is the type not for sending an SRS, the first
configuration information is: The first symbol set is an empty set, and the candidate
symbol set group includes {a candidate symbol set X
1 including (a symbol U
1, a symbol U
2, ...), a candidate symbol set X
2 including (a symbol V
1, a symbol V
2, ...), and a candidate symbol set X
3 including (a symbol W
1, a symbol W
2, ...)}.
[0103] {The candidate symbol set O
1 including (the symbol P
1, the symbol P
2, ...), the candidate symbol set O
2 including (the symbol Q
1, the symbol Q
2, ...), and the candidate symbol set O
3 including (the symbol R
1, the symbol R
2, ...)} are different from {the candidate symbol set X
1 including (the symbol U
1, the symbol U
2, ...), the candidate symbol set X
2 including (the symbol V
1, the symbol V
2, ...), and the candidate symbol set X
3 including (the symbol W
1, the symbol W
2, ...)}.
[0104] After determining the type of the uplink subframe, the UE determines the first configuration
information corresponding to the uplink subframe based on the preset correspondence
between the type of the uplink subframe and the first configuration information.
[0105] Step 203: The UE sends an SRS and/or a PUSCH in the uplink subframe based on the
signal sending indication information.
[0106] During implementation, the UE sends an SRS in the first symbol of the uplink subframe
based on the signal sending indication information, and/or sends a PUSCH in the symbol
that is included in the second symbol set of the uplink subframe.
[0107] During implementation, before the UE sends an SRS in the first symbol of the uplink
subframe, if the UE does not need to determine a busy/idle status of a channel in
the first symbol of the uplink subframe, and if the UE determines that the signal
sending indication information instructs to send an SRS in the first symbol of the
uplink subframe, the UE sends an SRS in the first symbol of the uplink subframe; or
if the UE determines that the signal sending indication information instructs not
to send an SRS in the uplink subframe, the UE does not send an SRS in the uplink subframe.
[0108] Before the UE sends an SRS in the first symbol of the uplink subframe, if the UE
needs to determine a busy/idle status of a channel in the first symbol of the uplink
subframe, the UE determines, based on a determining result of the busy/idle status
of the channel, whether to send an SRS in the first symbol of the uplink subframe.
Specifically, if the UE determines that the signal sending indication information
instructs to send an SRS in the first symbol of the uplink subframe, and determines
that the channel in the first symbol of the uplink subframe is idle, the UE sends
an SRS in the first symbol of the uplink subframe; otherwise, the UE does not send
an SRS in the first symbol of the uplink subframe.
[0109] For example, assuming that the first symbol is the last but one symbol of the uplink
subframe, the UE determines that the signal sending indication information for the
uplink subframe instructs to send an SRS in the first symbol of the uplink subframe,
and the UE needs to determine a busy/idle status of a channel in the first symbol
of the uplink subframe. The UE may determine whether to send an SRS in the first symbol
of the uplink subframe in the following two manners:
[0110] First, as shown in FIG. 4, before the last but one symbol of the uplink subframe
arrives, the UE listens a busy/idle status of a channel in the last but one symbol.
If a listening result is that the channel in the last but one symbol of the uplink
subframe is idle, the UE sends an SRS in the last but one symbol of the uplink subframe;
or if a listening result is that the channel in the last but one symbol of the uplink
subframe is not idle, the UE does not send an SRS in the uplink subframe.
[0111] Second, as shown in FIG. 5, if the UE sends a PUSCH or another uplink channel on
a channel in a symbol prior to the last but one symbol of the uplink subframe, the
UE determines that a channel in the last but one symbol of the uplink subframe is
idle, and the UE sends an SRS in the last but one symbol of the uplink subframe. If
the UE does not occupy a channel prior to the last but one symbol of the uplink subframe
to send a PUSCH or another uplink channel, the UE listens a busy/idle status of the
channel in the symbol prior to the last but one symbol of the uplink subframe, and
determines, based on a listening result, whether to send an SRS in the last but one
symbol of the uplink subframe. If the listening result is that the channel in the
last but one symbol of the uplink subframe is idle, the UE sends an SRS in the last
but one symbol of the uplink subframe; or if the listening result is that the channel
in the last but one symbol of the uplink subframe is not idle, the UE does not send
an SRS in the uplink subframe.
[0112] Step 204: The access network device receives the SRS and/or the PUSCH that are/is
sent by the UE in the uplink subframe based on the signal sending indication information.
[0113] During implementation, the access network device receives the SRS in the first symbol
of the uplink subframe, and/or receives the PUSCH in the symbol that is included in
the second symbol set of the uplink subframe.
[0114] During implementation, the first symbol is any candidate symbol included in the first
symbol set, and the first symbol set includes at least one of the following candidate
symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
[0115] During implementation, the second symbol set is a set in the candidate symbol set
group, and symbols included in each candidate symbol set in the candidate symbol set
group are K consecutive symbols. For example, a value of K is 11, 12, 13, or 14.
[0116] During implementation, the candidate symbol set group includes at least one of the
following candidate symbol sets:
a first candidate symbol set consisting of the 1st symbol to the last but three symbol of the uplink subframe;
a second candidate symbol set consisting of the 2nd symbol to the last but two symbol of the uplink subframe;
a third candidate symbol set consisting of the 3rd symbol to the last but one symbol of the uplink subframe;
a fourth candidate symbol set consisting of the 4th symbol to the last symbol of the uplink subframe;
a fifth candidate symbol set consisting of the 1st symbol to the last but two symbol of the uplink subframe;
a sixth candidate symbol set consisting of the 2nd symbol to the last but one symbol of the uplink subframe;
a seventh candidate symbol set consisting of the 3rd symbol to the last symbol of the uplink subframe;
an eighth candidate symbol set consisting of the 1st symbol to the last but one symbol of the uplink subframe;
a ninth candidate symbol set consisting of the 2nd symbol to the last symbol of the uplink subframe; and
a tenth candidate symbol set consisting of all symbols of the uplink subframe.
[0117] In a normal cyclic prefix scenario, the last but three symbol is the 11
th symbol, the last but two symbol is the 12
th symbol, the last but one symbol is the 13
th symbol, and the last symbol is the 14
th symbol.
[0118] During implementation, assuming that K
1 = 14, K
2 = 13, K
3 = 12, and K
4 = 11, combination manners of the first symbol and the second symbol set are:
if the first symbol is the first candidate symbol, the second symbol set is a candidate
symbol set that is included in the candidate symbol set group and whose symbols are
K2 consecutive symbols, or the second symbol set is a candidate symbol set that is included
in the candidate symbol set group and whose symbols are K3 consecutive symbols, or the second symbol set is a candidate symbol set that is included
in the candidate symbol set group and whose symbols are K4 consecutive symbols; and/or
if the first symbol is the second candidate symbol, the second symbol set is a candidate
symbol set that is included in the candidate symbol set group and whose symbols are
K3 consecutive symbols, or the second symbol set is a candidate symbol set that is included
in the candidate symbol set group and whose symbols are K4 consecutive symbols; and/or
if the first symbol is the third candidate symbol, the second symbol set is a candidate
symbol set that is included in the candidate symbol set group and whose symbols are
K2 consecutive symbols, or the second symbol set is a candidate symbol set that is included
in the candidate symbol set group and whose symbols are K3 consecutive symbols, or the second symbol set is a candidate symbol set that is included
in the candidate symbol set group and whose symbols are K4 consecutive symbols; and/or
if the first symbol is the fourth candidate symbol, the second symbol set is a candidate
symbol set that is included in the candidate symbol set group and whose symbols are
K3 consecutive symbols, or the second symbol set is a candidate symbol set that is included
in the candidate symbol set group and whose symbols are K4 consecutive symbols.
[0119] During implementation, preferable combination manners of the first symbol and the
second symbol set include but are not limited to the following:
if the first symbol is the first candidate symbol, the second symbol set is any one
of the third candidate symbol set, the sixth candidate symbol set, the seventh candidate
symbol set, and the ninth candidate symbol set; and/or
if the first symbol is the second candidate symbol, the second symbol set is either
of the seventh candidate symbol set and the fourth candidate symbol set; and/or
if the first symbol is the third candidate symbol, the second symbol set is one of
the second candidate symbol set, the fifth candidate symbol set, the sixth candidate
symbol set, and the eighth candidate symbol set; and/or
if the first symbol is the fourth candidate symbol, the second symbol set is either
of the first candidate symbol set and the fifth candidate symbol set.
[0120] A relationship between the first symbol and the second symbol set of the uplink sub
frame is described below by using several specific examples.
First specific embodiment
[0121] The access network device does not need to schedule the UE to send an SRS in the
uplink subframe.
[0122] In addition, if the access network device needs to reserve a time in the uplink subframe
to detect a busy/idle status of a channel in the uplink subframe before uplink data
is sent in a next uplink subframe, it may be determined that the second symbol set
includes the 1
st symbol to the last but one symbol of the uplink subframe, namely, the eighth candidate
symbol set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and the last symbol of the uplink subframe is used for CCA detection of a next subframe,
as shown in FIG. 6a.
[0123] Alternatively, if the access network device needs to reserve a time in the uplink
subframe for UE that occupies the uplink subframe, to detect a busy/idle status of
a channel in the uplink subframe, and needs to reserve a time in the uplink subframe
for another UE to detect a busy/idle status of a channel before the another UE sends
an SRS and reserve a time for the another UE to send the SRS, it may be determined
that the second symbol set consists of the 1
st symbol to the last but three symbol of the uplink subframe, namely, the first candidate
symbol set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
the last symbol of the uplink subframe is used for CCA detection of a next subframe,
the last but two symbol of the uplink subframe is used for CCA detection by the another
UE, and the last but one symbol of the uplink subframe is used by the another UE to
send an SRS, as shown in FIG. 6b.
[0124] Alternatively, if the access network device does not need to reserve a time in the
uplink subframe for UE that occupies the uplink subframe, to detect a busy/idle status
of a channel in the uplink subframe, it may be determined that the second symbol set
includes all symbols in the uplink subframe, namely, the tenth candidate symbol set
of the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and a location of a symbol in the uplink subframe for CCA detection of a next subframe,
as shown in FIG. 6c.
[0125] Alternatively, if the access network device does not need to reserve a time in the
uplink subframe for UE that occupies the uplink subframe, to detect a busy/idle status
of a channel in the uplink subframe, but needs to reserve a time in the uplink subframe
for another UE to detect a busy/idle status of a channel before the another UE sends
an SRS and reserve a time for the another UE to send the SRS, it may be determined
that the second symbol set includes the 1
st symbol to the last but two symbol of the uplink subframe, namely, the fifth candidate
symbol set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and there is no need to reserve a location of a symbol in the uplink subframe for
CCA detection of a next subframe, but a location of a symbol is reserved in the uplink
subframe for CCA detection by the another UE before the another UE sends an SRS, as
shown in FIG. 6d.
[0126] Alternatively, if the access network device needs to reserve a time in the uplink
subframe for another UE to detect a busy/idle status of a channel before the another
UE sends an SRS and reserve a time for the another UE to send the SRS, it may be determined
that the second symbol set includes the 3
rd symbol to the last symbol of the uplink subframe, namely, the seventh candidate symbol
set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and the 1
st symbol of the uplink subframe is used by the another UE to send an SRS, as shown
in FIG. 6e.
[0127] Alternatively, if the access network device needs to reserve a time in the uplink
subframe to detect a busy/idle status of a channel in the uplink subframe before uplink
data is sent, it may be determined that the second symbol set includes the 2
nd symbol to the last symbol of the uplink subframe, namely, the seventh candidate symbol
set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and the 1
st symbol of the uplink subframe is used for CCA detection, as shown in FIG. 6f.
[0128] Alternatively, if the access network device needs to reserve a time in the uplink
subframe for another UE to detect a busy/idle status of a channel in the uplink subframe,
and needs to reserve a time in the uplink subframe for the another UE to detect the
busy/idle status of the channel before the another UE sends an SRS and reserve a time
for the another UE to send the SRS, it may be determined that the second symbol set
includes the 3
rd symbol to the last but one symbol of the uplink subframe, namely, the third candidate
symbol set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
the 1
st symbol of the uplink subframe is used by the another UE to send an SRS, the 2
nd symbol of the uplink subframe is used for CCA detection by the another UE, and the
last symbol of the uplink subframe is used for CCA detection of a next subframe, as
shown in FIG. 6g.
[0129] Alternatively, if the access network device needs to reserve a time in the uplink
subframe for another UE to detect a busy/idle status of a channel in the uplink subframe,
and needs to reserve a time in the uplink subframe for the another UE to detect the
busy/idle status of the channel before the another UE sends an SRS, it may be determined
that the second symbol set includes the 2
nd symbol to the last but one symbol of the uplink subframe, namely, the sixth candidate
symbol set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and the 1
st symbol of the uplink subframe is used by the another UE to send an SRS, and the last
symbol of the uplink subframe is used for CCA detection of a next subframe, as shown
in FIG. 6h.
[0130] Alternatively, if the access network device needs to reserve a time in the uplink
subframe to detect a busy/idle status of a channel in the uplink subframe, and needs
to reserve a time in the uplink subframe for another UE to detect a busy/idle status
of a channel before the another UE sends an SRS and reserve a time for the another
UE to send the SRS, it may be determined that the second symbol set includes the 2
nd symbol to the last but two symbol of the uplink subframe, namely, the second candidate
symbol set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
the 1
st symbol of the uplink subframe is used to detect the busy/idle status of the channel,
the last but one symbol of the uplink subframe is used for CCA detection by the another
UE before the another UE sends an SRS, and the last symbol of the uplink subframe
is used by the another UE to send an SRS, as shown in FIG. 6k.
[0131] Alternatively, if the access network device needs to reserve a time in the uplink
subframe to detect a busy/idle status of a channel in the uplink subframe, and needs
to reserve a time in the uplink subframe for another UE to detect a busy/idle status
of a channel before the another UE sends an SRS and reserve a time for the another
UE to send the SRS, it may be determined that the second symbol set includes the 4
th symbol to the last symbol of the uplink subframe, namely, the fourth candidate symbol
set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
the 2
nd symbol of the uplink subframe is used for CCA detection by the another UE before
the another UE sends an SRS, the last symbol of the uplink subframe is used by the
another UE to send an SRS, and the 3
rd symbol of the uplink subframe is used for CCA detection, as shown in FIG. 6m.
[0132] Second specific embodiment, channel distribution of a uplink subframe is shown in
FIG. 7a, FIG. 7b, FIG. 7c, and FIG. 7d
[0133] The access network device needs to schedule the UE to send an SRS in the 1
st symbol of the uplink subframe, and may determine that the first symbol is the 1
st symbol of the uplink subframe, namely, the first candidate symbol in the first symbol
set.
[0134] In addition, if the access network device needs to reserve a time in the uplink subframe
to detect a busy/idle status of a channel, it may be determined that the second symbol
set includes the 2
nd symbol to the last but one symbol of the uplink subframe, namely, the sixth candidate
symbol set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and the last symbol of the uplink subframe is used for CCA detection, as shown in
FIG. 7a.
[0135] Alternatively, if the access network device does not need to reserve a time in the
uplink subframe to detect a busy/idle status of a channel, it may be determined that
the second symbol set includes the 2
nd symbol to the last symbol of the uplink subframe, namely, the ninth candidate symbol
set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and there is no need to reserve a location of a symbol in the uplink subframe for
CCA detection, as shown in FIG. 7b.
[0136] Alternatively, if the access network device needs to reserve a time in the uplink
subframe to detect a busy/idle status of a channel, and needs to reserve a time in
the uplink subframe for another UE to detect a busy/idle status of a channel before
the another UE sends an SRS, it may be determined that the second symbol set includes
the 3
rd symbol to the last but one symbol of the uplink subframe, namely, the third candidate
symbol set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink sub frame are used to send a DMRS,
the 2
nd symbol of the uplink subframe is used for CCA detection by the another UE, and the
last symbol of the uplink subframe is used for CCA detection of a next subframe, as
shown in FIG. 7c.
[0137] Alternatively, if the access network device needs to reserve a time in the uplink
subframe to detect a busy/idle status of a channel, but does not need to reserve a
time in the uplink subframe for another UE to detect a busy/idle status of a channel
before the another UE sends an SRS, it may be determined that the second symbol set
includes the 3
rd symbol to the last symbol of the uplink subframe, namely, the seventh candidate symbol
set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and the 2
nd symbol of the uplink subframe is used for CCA detection by the another UE, as shown
in FIG. 7d.
Third specific embodiment
[0138] The access network device needs to schedule the UE to send an SRS in the 2
nd symbol of the uplink subframe, and it may be determined that the first symbol is
the 2
nd symbol of the uplink subframe, namely, the second candidate symbol in the first symbol
set.
[0139] In addition, channel distribution of the uplink subframe is shown in FIG. 8, and
if the access network device needs to reserve a time in the uplink subframe for UE
that occupies the uplink subframe, to detect a busy/idle status of a channel in the
uplink subframe, it may be determined that the second symbol set includes the 3
rd symbol to the last symbol of the uplink subframe, namely, the seventh candidate symbol
set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and the 1
st symbol of the uplink subframe is used for CCA detection.
[0140] Alternatively, channel distribution of the uplink subframe is shown in FIG. 9, and
if the access network device needs to reserve a time in the uplink subframe for UE
that occupies the uplink subframe to send an SRS, to detect a busy/idle status of
a channel, and needs to reserve a time in the uplink subframe for UE that occupies
the uplink subframe to send data, to detect a busy/idle status of a channel, it may
be determined that the second symbol set includes the 4
th symbol to the last symbol of the uplink subframe, namely, the fourth candidate symbol
set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
the 1
st symbol of the uplink subframe is used for CCA detection by the UE that sends the
SRS, and the 3
rd symbol of the uplink subframe is used for CCA detection by the UE that sends the
data in the uplink subframe.
[0141] Fourth specific embodiment, channel distribution of a uplink subframe is shown in
FIG. 10a, FIG. 10b, FIG. 10c, and FIG. 10d
[0142] If the access network device needs to schedule the UE to send an SRS in the last
symbol of the uplink subframe, it is determined that the first symbol is the third
candidate symbol in the first symbol set, in other words, the first symbol is the
last symbol in the 2
nd timeslot of the uplink subframe.
[0143] In addition, if the access network device does not need to reserve a time in the
uplink subframe for UE or another device for CCA detection, and does not need to reserve
a time in the uplink subframe for another UE to detect a busy/idle status of a channel
before the another UE sends an SRS, it may be determined that the second symbol set
is the eighth candidate symbol set in the candidate symbol set group. The eighth candidate
symbol set consists of the 1
st symbol to the last but one symbol of the uplink subframe. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and there is no need to reserve a location of a symbol in the uplink subframe for
CCA detection of a next subframe, as shown in FIG. 10a.
[0144] Alternatively, if the access network device needs to reserve a time in the uplink
subframe for UE that occupies the uplink subframe, to detect a busy/idle status of
a channel in the uplink subframe, and needs to reserve a time in the uplink subframe
for another UE to detect a busy/idle status of a channel in the uplink subframe before
the another UE sends an SRS, it may be determined that the second symbol set is the
second candidate symbol set in the candidate symbol set group. The second candidate
symbol set consists of the 2
nd symbol to the last but two symbol of the uplink subframe. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
the 1
st symbol of the uplink subframe is the time for the UE that occupies the uplink subframe,
to detect the busy/idle status of the channel in the uplink subframe, the last but
one symbol of the uplink subframe is the time for the another UE that occupies the
uplink subframe, to detect the busy/idle status of the channel in the uplink subframe
before the another UE sends the SRS, and there is no need to reserve a location of
a symbol in the uplink subframe for CCA detection of a next subframe, as shown in
FIG. 10b.
[0145] Alternatively, if the access network device needs to reserve a time in the uplink
subframe for UE that occupies the uplink subframe, to detect a busy/idle status of
a channel in the uplink subframe, but does not need to reserve a time in the uplink
subframe for another UE to detect a busy/idle status of a channel before the another
UE sends an SRS, it may be determined that the second symbol set includes the 2
nd symbol to the last but one symbol of the uplink subframe, namely, the sixth candidate
symbol set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and the 1
st symbol of the uplink subframe is used for CCA detection, as shown in FIG. 10c.
[0146] Alternatively, if the access network device does not need to reserve a time in the
uplink subframe for UE that occupies the uplink subframe, to detect a busy/idle status
of a channel in the uplink subframe, but needs to reserve a time in the uplink subframe
for another UE to detect a busy/idle status of a channel in the uplink subframe before
the another UE sends an SRS, it may be determined that the second symbol set includes
the 1
st symbol to the last but two symbol of the uplink subframe, namely, the fifth candidate
symbol set in the candidate symbol set group. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and the 1
st symbol of the uplink subframe is used for CCA detection, as shown in FIG. 10d.
[0147] Fifth specific embodiment, channel distribution of a uplink subframe is shown in
FIG. 11a and FIG. 11b
[0148] The access network device needs to schedule the UE to send an SRS in the last but
one symbol of the uplink subframe, and reserve the last symbol of the uplink subframe
for the UE or another device for CCA detection, and the access network device may
determine the first symbol as the fourth candidate symbol in the first symbol set.
In other words, the first symbol is the last but one symbol of the uplink subframe.
[0149] In addition, if the access network device does not need to reserve a time in the
uplink subframe for another UE to detect a busy/idle status of a channel before the
another UE sends an SRS, it may be determined that the second symbol set is the fifth
candidate symbol set in the candidate symbol set group. The fifth candidate symbol
set consists of the 1
st symbol to the last but two symbol of the uplink subframe. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
as shown in FIG. 11a.
[0150] Alternatively, if the access network device needs to reserve a time in the uplink
subframe for another UE to detect a busy/idle status of a channel before the another
UE sends an SRS, it may be determined that the second symbol set is the first candidate
symbol set in the candidate symbol set. The first candidate symbol set consists of
the 1
st symbol to the last but three symbol of the uplink subframe. The 4
th symbol and the last but three symbol of the uplink subframe are used to send a DMRS,
and the last but two symbol of the uplink subframe is used for CCA detection by the
another UE, as shown in FIG. 11b.
[0151] Based on a same inventive concept, in the embodiments of the present invention, a
location of the first symbol at which the UE 1 is scheduled by the access network
device in the first uplink subframe to send an SRS is affected by whether there is
a need to reserve a time in the first uplink subframe for another UE to detect a busy/idle
status of a channel before the another UE sends data in the second uplink subframe,
and affected by whether there is a need to schedule the another UE to send a PUSCH/an
SRS in the first uplink subframe. For UE, the UE cannot learn of configurations and
scheduling statuses of the access network device for the another UE, but a location
for the UE to send a PUSCH and/or an SRS is affected by the another UE, and a time
for each UE and a location occupied by each UE to send data cannot be determined.
Therefore, it is very complex for the access network device to centrally manage uplink
shared channel resources.
[0152] To reduce complexity of the access network device in centrally managing the uplink
shared channel resources, the access network device indicates SRS sending statuses
of at least two UEs in a same uplink subframe in a common downlink control channel
sent to the at least two UEs, centrally schedules SRSs of the UEs as many as possible
in a same uplink subframe or a same symbol of a same uplink subframe, and reduces
a time reserved for individual UE to detect a busy/idle status of a channel, to reduce
complexity in centrally managing the uplink shared channel resources.
[0153] Based on this, a specific implementation of SRS transmission is shown in FIG. 12,
and details are as follows.
[0154] Step 1201: An access network device sends SRS sending indication information for
an uplink subframe to UE.
[0155] The SRS sending indication information includes information about whether to send
an SRS in the uplink subframe, and/or information about whether to send an SRS in
a first symbol of the uplink subframe.
[0156] Step 1202: The UE receives the SRS sending indication information that is sent by
the access network device for the uplink subframe.
[0157] Step 1203: The UE determines, based on the SRS sending indication information for
the uplink subframe, whether to send an SRS in the uplink subframe.
[0158] Specifically, based on the SRS sending indication information for the uplink subframe,
the UE does not send an SRS in the uplink subframe, or sends an SRS in the first symbol
of the uplink subframe.
[0159] Step 1204: The access network device receives an uplink signal of the UE in the uplink
subframe based on the SRS sending indication information for the UE in the uplink
subframe.
[0160] Specifically, if the SRS sending indication information for the uplink subframe instructs
to send an SRS in the first symbol of the uplink subframe, the access network device
receives the SRS in the first symbol of the uplink subframe; otherwise, the access
network device receives no SRS in the uplink subframe.
[0161] Specifically, the first symbol is any candidate symbol included in a first symbol
set, and the first symbol set includes at least one of the following candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
[0162] Specifically, the SRS sending indication information for the uplink subframe belongs
to information on a common downlink control channel that is sent by the access network
device to at least two UEs.
[0163] The common downlink control channel is any one of the following:
a physical downlink control channel sent in common search space of the physical downlink
control channel;
an enhanced physical downlink control channel sent in common search space of the enhanced
physical downlink control channel;
a common downlink control channel sent in a resource of a hybrid automatic retransmission
indicator physical channel; and
a common downlink control channel sent in a resource of a physical control format
indicator channel.
[0164] Specifically, the SRS sending indication information for the uplink subframe on the
common downlink control channel uses first RNTI (Radio Network Temporary Identity)-scrambled
CRC check code. The first RNTI is configured by the access network device for the
UE, and is used to demodulate SRS sending indication information for the UE in an
uplink subframe of an uplink carrier.
[0165] The first RNTI is configured by the access network device for the at least two UEs.
[0166] The common downlink control channel includes SRS sending indication information for
the at least two UEs in the uplink subframe of the uplink carrier.
[0167] Optionally, the SRS sending indication information for the at least two UEs in the
uplink subframe of the uplink carrier is the same. On the common downlink control
channel, the SRS sending indication information in the uplink subframe of the uplink
carrier is the SRS sending indication information shared by the at least two UEs.
[0168] Optionally, the SRS sending indication information for the at least two UEs in the
uplink subframe of the uplink carrier is different. The access network device configures
a location of SRS sending indication information that is of each of the at least two
UEs and that is for the uplink subframe of the uplink carrier, on the common downlink
control channel. Each of the at least two UEs obtains, based on the indicated location
information, the SRS sending indication information for the UE in the uplink subframe
on the common downlink control channel.
[0169] For example, the SRS sending indication information sent by the access network device
on the common downlink control channel is: SRS sending indication information 1, SRS
sending indication information 2, SRS sending indication information 3, ..., and SRS
sending indication information L. The SRS sending indication information 1, the SRS
sending indication information 2, the SRS sending indication information 3, ..., and
the SRS sending indication information L are SRS sending indication information for
L UEs. After determining information that is received on the common downlink control
channel by using the first RNTI, any one of the L UEs obtains SRS sending indication
information for the UE in the uplink subframe based on a location, of the SRS sending
indication information that is configured by the access network device for the UE,
on the common downlink control channel.
[0170] Optionally, when the SRS sending indication information for the at least two UEs
is to send an SRS in first symbols of the uplink subframe, the first symbols corresponding
to the at least two UEs may be the same or may be different.
[0171] Optionally, the common downlink control channel may alternatively be sent on a resource
of a hybrid automatic retransmission indicator physical channel or a resource of a
physical control format indicator channel. On carriers in an unlicensed spectrum,
HARQ-ACK information does not need to be sent on a resource of a hybrid automatic
retransmission indicator physical channel, and control format indication information
does not need to be sent on a resource of a physical control format indicator channel.
Therefore, a common downlink control channel may be sent on the resource of the hybrid
automatic retransmission indicator physical channel or the resource of the physical
control format indicator channel on the carriers in the unlicensed spectrum.
[0172] Based on a same inventive concept, an embodiment of the present invention further
provides a terminal. For a specific implementation of the terminal, refer to the description
of the foregoing method embodiment part, and a repeated part is not described again.
As shown in FIG. 13, the terminal mainly includes:
a receiving module 1301, configured to receive signal sending indication information
that is sent by an access network device for an uplink subframe, where the signal
sending indication information is used to instruct the terminal UE to send a sounding
reference signal SRS in a first symbol of the uplink subframe, and/or used to instruct
the UE to send a PUSCH in a symbol that is included in a second symbol set of the
uplink subframe; and
a sending module 1302, configured to send an SRS and/or a PUSCH in the uplink subframe
based on the signal sending indication information.
[0173] In a possible implementation, the first symbol and/or the symbol that is included
in the second symbol set are/is sent to the UE by the access network device by using
the signal sending indication information; or
the first symbol and/or the symbol that is included in the second symbol set are/is
preconfigured for the UE by the access network device.
[0174] In a possible implementation, the terminal further includes a processing module 1303,
configured to:
determine first configuration information, where the first configuration information
includes indication information of a first symbol set and/or a candidate symbol set
group;
determine the first symbol in the first symbol set based on the signal sending indication
information; and/or
determine the second symbol set in the candidate symbol set group based on the signal
sending indication information.
[0175] In a possible implementation, the receiving module is further configured to receive
the first configuration information sent by the access network device; or
the processing module is further configured to: determine a type of the uplink subframe
based on the signal sending indication information, and determine the first configuration
information corresponding to the type of the uplink subframe based on a preset correspondence
between the type of the uplink subframe and the first configuration information.
[0176] For a specific configuration of the first symbol set and the candidate symbol set
group, refer to the description of the method embodiment part, and details are not
repeatedly described herein. For a specific configuration of the first symbol and
the symbol that is included in the second symbol set, refer to the description of
the method embodiment part, and details are not repeatedly described herein.
[0177] Based on a same inventive concept, an embodiment of the present invention further
provides another terminal. For a specific implementation of the terminal, refer to
the description of the foregoing method embodiment part, and a repeated part is not
described again. As shown in FIG. 14, the terminal mainly includes a processor 1401,
a memory 1402, and a transceiver 1403. The transceiver 1403 is configured to send
and receive data under control of the processor 1401, the memory 1402 stores a preset
program, and the processor 1401 reads the program stored in the memory 1402 to perform
the following process according to the program:
receiving, by using the transceiver 1403, signal sending indication information that
is sent by an access network device for an uplink subframe, where the signal sending
indication information is used to instruct the terminal UE to send a sounding reference
signal SRS in a first symbol of the uplink subframe, and/or used to instruct the UE
to send a PUSCH in a symbol that is included in a second symbol set of the uplink
subframe; and
instructing, based on the signal sending indication information, the transceiver 1403
to send an SRS and/or a PUSCH in the uplink subframe.
[0178] In a possible implementation, the first symbol and/or the symbol that is included
in the second symbol set are/is sent to the UE by the access network device by using
the signal sending indication information; or
the first symbol and/or the symbol that is included in the second symbol set are/is
preconfigured for the UE by the access network device.
[0179] In a possible implementation, the processor 1401 determines first configuration information,
where the first configuration information includes indication information of a first
symbol set and/or a candidate symbol set group; determines the first symbol in the
first symbol set based on the signal sending indication information, and/or determines
the second symbol set in the candidate symbol set group based on the signal sending
indication information.
[0180] In a possible implementation, the processor 1401 is further configured to receive,
by using the transceiver 1403, the first configuration information sent by the access
network device; or
the processor 1401 is further configured to: determine a type of the uplink subframe
based on the signal sending indication information, and determine the first configuration
information corresponding to the type of the uplink subframe based on a preset correspondence
between the type of the uplink subframe and the first configuration information.
[0181] For a specific configuration of the first symbol set and the candidate symbol set
group, refer to the description of the method embodiment part, and details are not
repeatedly described herein. For a specific configuration of the first symbol and
the symbol that is included in the second symbol set, refer to the description of
the method embodiment part, and details are not repeatedly described herein.
[0182] Based on a same inventive concept, an embodiment of the present invention further
provides an access network device. For a specific implementation of the access network
device, refer to the description of the foregoing method embodiment part, and a repeated
part is not described again. As shown in FIG. 15, the access network device mainly
includes:
a sending module 1501, configured to send signal sending indication information for
an uplink subframe, where the signal sending indication information is used to instruct
a terminal UE to send a sounding reference signal SRS in a first symbol of the uplink
subframe, and/or used to instruct the terminal UE to send a PUSCH in a symbol that
is included in a second symbol set of the uplink subframe; and
a receiving module 1502, configured to receive an SRS and/or a PUSCH that are/is sent
by the UE in the uplink subframe based on the signal sending indication information.
[0183] In a possible implementation, the access network device further includes a processing
module 1503, specifically configured to:
notify, by using the signal sending indication information, the UE of the first symbol
and/or the symbol that is included in the second symbol set; or
preconfigure the first symbol and/or the symbol that is included in the second symbol
set for the UE.
[0184] In a possible implementation, the sending module 1501 is further configured to:
send first configuration information to the UE, where the first configuration information
includes indication information of a first symbol set and/or a candidate symbol set
group, the first symbol set includes at least one candidate symbol of the first symbol,
and the candidate symbol set group includes at least one candidate symbol set of the
second symbol set.
[0185] For a specific configuration of the first symbol set and the candidate symbol set
group, refer to the description of the method embodiment part, and details are not
repeatedly described herein. For a specific configuration of the first symbol and
the symbol that is included in the second symbol set, refer to the description of
the method embodiment part, and details are not repeatedly described herein.
[0186] Based on a same inventive concept, an embodiment of the present invention further
provides an access network device. For a specific implementation of the access network
device, refer to the description of the foregoing method embodiment part, and a repeated
part is not described again. As shown in FIG. 16, the access network device mainly
includes a processor 1601, a memory 1602, and a transceiver 1603. The transceiver
1603 is configured to send and receive data under control of the processor 1601, the
memory 1602 stores a preset program, and the processor 1601 reads the program stored
in the memory 1602 to perform the following process according to the program:
instructing the transceiver 1603 to send signal sending indication information for
an uplink subframe, where the signal sending indication information is used to instruct
a terminal UE to send a sounding reference signal SRS in a first symbol of the uplink
subframe, and/or used to instruct the terminal UE to send a PUSCH in a symbol that
is included in a second symbol set of the uplink subframe; and
receiving, by using the transceiver 1603, an SRS and/or a PUSCH that are/is sent by
the UE in the uplink subframe based on the signal sending indication information.
[0187] In a possible implementation, the processor 1601 notifies, by using the signal sending
indication information, the UE of the first symbol and/or the symbol that is included
in the second symbol set, or preconfigures the first symbol and/or the symbol that
is included in the second symbol set for the UE.
[0188] In a possible implementation, the processor 1601 is further configured to instruct
the transceiver 1603 to send first configuration information to the UE, where the
first configuration information includes indication information of a first symbol
set and/or a candidate symbol set group, the first symbol set includes at least one
candidate symbol of the first symbol, and the candidate symbol set group includes
at least one candidate symbol set of the second symbol set.
[0189] For a specific configuration of the first symbol set and the candidate symbol set
group, refer to the description of the method embodiment part, and details are not
repeatedly described herein. For a specific configuration of the first symbol and
the symbol that is included in the second symbol set, refer to the description of
the method embodiment part, and details are not repeatedly described herein.
[0190] Based on a same inventive concept, an embodiment of the present invention further
provides another access network device. For a specific implementation of the access
network device, refer to the description of the foregoing method embodiments, and
a repeated part is not described again. As shown in FIG. 17, the access network device
mainly includes:
a sending module 1701, configured to send SRS sending indication information for an
uplink subframe to UE; and
a receiving module 1702, configured to receive an uplink signal of the UE in the uplink
subframe based on the SRS sending indication information.
[0191] The SRS sending indication information includes information about whether to send
an SRS in the uplink subframe, and/or information about whether to send an SRS in
a first symbol of the uplink subframe.
[0192] Specifically, if the SRS sending indication information for the uplink subframe instructs
to send an SRS in the first symbol of the uplink subframe, the receiving module 1702
receives the SRS in the first symbol of the uplink subframe; otherwise, the receiving
module 1702 receives no SRS in the uplink subframe.
[0193] Specifically, the SRS sending indication information for the uplink subframe belongs
to information on a common downlink control channel that is sent by the access network
device to at least two UEs.
[0194] Specifically, for a specific configuration of the first symbol, refer to the description
of the foregoing method embodiments, and details are not repeatedly described herein.
[0195] Based on a same inventive concept, an embodiment of the present invention further
provides another access network device. For a specific implementation of the access
network device, refer to the description of the foregoing method embodiments, and
a repeated part is not described again. As shown in FIG. 18, the access network device
mainly includes a processor 1801, a memory 1802, and a transceiver 1803. The transceiver
1803 is configured to send and receive data under control of the processor 1801, the
memory 1802 stores a preset program, and the processor 1801 reads the program stored
in the memory 1802 to perform the following process according to the program:
instructing the transceiver 1803 to send SRS sending indication information for an
uplink subframe to UE; and
instructing, based on the SRS sending indication information, the transceiver 1803
to receive an uplink signal of the UE in the uplink subframe.
[0196] The SRS sending indication information includes information about whether to send
an SRS in the uplink subframe, and/or information about whether to send an SRS in
a first symbol of the uplink subframe.
[0197] Specifically, if the SRS sending indication information for the uplink subframe instructs
to send an SRS in the first symbol of the uplink subframe, the processor instructs
the transceiver to receive the SRS in the first symbol of the uplink subframe; otherwise,
the processor instructs the transceiver to receive no SRS in the uplink subframe.
[0198] Specifically, the SRS sending indication information for the uplink subframe belongs
to information on a common downlink control channel that is sent by the access network
device to at least two UEs.
[0199] Specifically, for a specific configuration of the first symbol, refer to the description
of the foregoing method embodiments, and details are not repeatedly described herein.
[0200] Based on a same inventive concept, an embodiment of the present invention further
provides another terminal. For a specific implementation of the terminal, refer to
the description of the foregoing method embodiments, and a repeated part is not described
again. As shown in FIG. 19, the terminal mainly includes:
a receiving module 1901, configured to receive SRS sending indication information
that is sent by an access network device for an uplink subframe; and
a processing module 1902, configured to determine, based on the SRS sending indication
information for the uplink subframe, whether to instruct a sending module 1903 to
send an SRS in the uplink subframe.
[0201] The SRS sending indication information includes information about whether to send
an SRS in the uplink subframe, and/or information about whether to send an SRS in
a first symbol of the uplink subframe.
[0202] Specifically, for a specific configuration of the first symbol, refer to the description
of the foregoing method embodiments, and details are not repeatedly described herein.
[0203] Based on a same inventive concept, an embodiment of the present invention further
provides another terminal. For a specific implementation of the terminal, refer to
the description of the foregoing method embodiments, and a repeated part is not described
again. As shown in FIG. 20, the terminal mainly includes a processor 2001, a memory
2002, and a transceiver 2003. The transceiver 2003 is configured to send and receive
data under control of the processor 2001, the memory 2002 stores a preset program,
and the processor 2001 reads the program stored in the memory 2002 to perform the
following process according to the program:
receiving, by using the transceiver 2003, SRS sending indication information that
is sent by an access network device for an uplink subframe; and
determining, based on the SRS sending indication information for the uplink subframe,
whether to instruct the transceiver 2003 to send an SRS in the uplink subframe.
[0204] The SRS sending indication information includes information about whether to send
an SRS in the uplink subframe, and/or information about whether to send an SRS in
a first symbol of the uplink subframe.
[0205] Specifically, for a specific configuration of the first symbol, refer to the description
of the foregoing method embodiments, and details are not repeatedly described herein.
[0206] Bus architectures in FIG. 14, FIG. 16, FIG. 18, and FIG. 20 may include any quantity
of interconnected buses and bridges. Specifically, the interconnected buses and bridges
are linked together by one or more processors represented by a processor and various
circuits of memories represented by a memory. By using the bus architectures, various
other circuits such as peripheral devices, voltage regulators, and power management
circuits can be linked together. This is well known in the art and therefore is no
longer further described in this specification. A bus interface provides an interface.
A transceiver may be a plurality of elements, that is, include a transmitter and a
transceiver, and provide units that communicate with other apparatuses in a transmission
medium. The processor is responsible for bus architecture management and general processing,
and the memory may store data used when the processor performs an operation.
[0207] A person skilled in the art should understand that the embodiments of the present
invention may be provided as a method, a system, or a computer program product. Therefore,
the present invention may use a form of hardware only embodiments, software only embodiments,
or embodiments with a combination of software and hardware. Moreover, the present
invention may use a form of a computer program product that is implemented on one
or more computer-usable storage media (including but not limited to a disk memory
and an optical memory) that include computer-usable program code.
[0208] The present invention is described with reference to the flowcharts and/or block
diagrams of the method, the device (system), and the computer program product according
to the embodiments of the present invention. It should be understood that computer
program instructions may be used to implement each process and/or each block in the
flowcharts and/or the block diagrams and a combination of a process and/or a block
in the flowcharts and/or the block diagrams. These computer program instructions may
be provided for a general-purpose computer, a dedicated computer, an embedded processor,
or a processor of any other programmable data processing device to generate a machine,
so that the instructions executed by a computer or a processor of any other programmable
data processing device generate an apparatus for implementing a specific function
in one or more processes in the flowcharts and/or in one or more blocks in the block
diagrams.
[0209] These computer program instructions may be stored in a computer readable memory that
can instruct the computer or the any other programmable data processing device to
work in a specific manner, so that the instructions stored in the computer readable
memory generate an artifact that includes an instruction apparatus. The instruction
apparatus implements a specific function in one or more processes in the flowcharts
and/or in one or more blocks in the block diagrams.
[0210] These computer program instructions may be loaded onto the computer or the another
programmable data processing device, so that a series of operations and steps are
performed on the computer or the another programmable device, thereby generating computer-implemented
processing. Therefore, the instructions executed on the computer or the another programmable
device provide steps for implementing a specific function in one or more processes
in the flowcharts and/or in one or more blocks in the block diagrams.
[0211] Obviously, a person skilled in the art can make various modifications and variations
to the present invention without departing from the spirit and scope of the present
invention. The present invention is intended to cover these modifications and variations
provided that they fall within the scope of protection defined by the following claims
and their equivalent technologies.
1. An uplink signal transmission method, comprising:
receiving, by a terminal UE, signal sending indication information that is sent by
an access network device for an uplink subframe, wherein the signal sending indication
information is used to instruct the UE to send a sounding reference signal SRS in
a first symbol of the uplink subframe, and/or used to instruct the UE to send a PUSCH
in a symbol that is comprised in a second symbol set of the uplink subframe; and
sending, by the UE, an SRS and/or a PUSCH in the uplink subframe based on the signal
sending indication information.
2. The method according to claim 1, wherein the first symbol and/or the symbol that is
comprised in the second symbol set are/is sent to the UE by the access network device
by using the signal sending indication information; or
the first symbol and/or the symbol that is comprised in the second symbol set are/is
preconfigured for the UE by the access network device.
3. The method according to claim 1, wherein the method further comprises:
determining, by the UE, first configuration information, wherein the first configuration
information comprises indication information of a first symbol set and/or a candidate
symbol set group;
determining, by the UE, the first symbol in the first symbol set based on the signal
sending indication information; and/or
determining the second symbol set in the candidate symbol set group based on the signal
sending indication information.
4. The method according to claim 3, wherein the determining, by the UE, first configuration
information comprises:
receiving, by the UE, the first configuration information sent by the access network
device; or
determining, by the UE, a type of the uplink subframe based on the signal sending
indication information, and determining the first configuration information corresponding
to the type of the uplink subframe based on a preset correspondence between the type
of the uplink subframe and the first configuration information.
5. The method according to any one of claims 1 to 4, wherein the first symbol is any
candidate symbol comprised in the first symbol set, and the first symbol set comprises
at least one of the following candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
6. The method according to any one of claims 1 to 5, wherein the second symbol set is
any candidate symbol set comprised in the candidate symbol set group, and any candidate
symbol set in the candidate symbol set group comprises K consecutive symbols, wherein
K is a positive integer.
7. The method according to claim 6, wherein a value of K is 14, 13, 12, or 11.
8. The method according to claim 6 or 7, wherein the candidate symbol set group comprises
at least one of the following candidate symbol sets:
a first candidate symbol set consisting of the 1st symbol to the last but three symbol of the uplink subframe;
a second candidate symbol set consisting of the 2nd symbol to the last but two symbol of the uplink subframe;
a third candidate symbol set consisting of the 3rd symbol to the last but one symbol of the uplink subframe;
a fourth candidate symbol set consisting of the 4th symbol to the last symbol of the uplink subframe;
a fifth candidate symbol set consisting of the 1st symbol to the last but two symbol of the uplink subframe;
a sixth candidate symbol set consisting of the 2nd symbol to the last but one symbol of the uplink subframe;
a seventh candidate symbol set consisting of the 3rd symbol to the last symbol of the uplink subframe;
an eighth candidate symbol set consisting of the 1st symbol to the last but one symbol of the uplink subframe;
a ninth candidate symbol set consisting of the 2nd symbol to the last symbol of the uplink subframe; and
a tenth candidate symbol set consisting of all symbols of the uplink subframe.
9. The method according to any one of claims 1 to 8, wherein if the first symbol is the
first candidate symbol, the second symbol set comprises A consecutive symbols, wherein
a value of A is any one of 11, 12, or 13; and/or
if the first symbol is the second candidate symbol, the second symbol set comprises
B consecutive symbols, wherein a value of B is either of 11 or 12; and/or
if the first symbol is the third candidate symbol, the second symbol set comprises
C consecutive symbols, wherein a value of C is any one of 11, 12, or 13; and/or
if the first symbol is the fourth candidate symbol, the second symbol set comprises
D consecutive symbols, wherein a value of D is either of 11 or 12; and
the first candidate symbol is the 1st symbol of the uplink subframe;
the second candidate symbol is the 2nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe; and
the fourth candidate symbol is the last but one symbol of the uplink subframe.
10. The method according to any one of claims 1 to 9, wherein if the first symbol is the
first candidate symbol, the second symbol set is any one of the third candidate symbol
set, the sixth candidate symbol set, the seventh candidate symbol set, and the ninth
candidate symbol set; and/or
if the first symbol is the second candidate symbol, the second symbol set is either
of the seventh candidate symbol set and the fourth candidate symbol set; and/or
if the first symbol is the third candidate symbol, the second symbol set is one of
the second candidate symbol set, the fifth candidate symbol set, the sixth candidate
symbol set, and the eighth candidate symbol set; and/or
if the first symbol is the fourth candidate symbol, the second symbol set is either
of the first candidate symbol set and the fifth candidate symbol set; and
the first candidate symbol is the 1st symbol of the uplink subframe;
the second candidate symbol is the 2nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe;
the fourth candidate symbol is the last but one symbol of the uplink subframe;
the first candidate symbol set consists of the 1st symbol to the last but three symbol of the uplink subframe;
the second candidate symbol set consists of the 2nd symbol to the last but two symbol of the uplink subframe;
the third candidate symbol set consists of the 3rd symbol to the last but one symbol of the uplink subframe;
the fourth candidate symbol set consists of the 4th symbol to the last symbol of the uplink subframe;
the fifth candidate symbol set consists of the 1st symbol to the last but two symbol of the uplink subframe;
the sixth candidate symbol set consists of the 2nd symbol to the last but one symbol of the uplink subframe;
the seventh candidate symbol set consists of the 3rd symbol to the last symbol of the uplink subframe;
the eighth candidate symbol set consists of the 1st symbol to the last but one symbol of the uplink subframe; and
the ninth candidate symbol set consists of the 2nd symbol to the last symbol of the uplink subframe.
11. An uplink signal transmission method, comprising:
sending, by an access network device, signal sending indication information for an
uplink subframe, wherein the signal sending indication information is used to instruct
a terminal UE to send a sounding reference signal SRS in a first symbol of the uplink
subframe, and/or used to instruct the terminal UE to send a PUSCH in a symbol that
is comprised in a second symbol set of the uplink subframe; and
receiving, by the access network device, an SRS and/or a PUSCH that are/is sent by
the UE in the uplink subframe based on the signal sending indication information.
12. The method according to claim 11, wherein the method further comprises:
notifying, by the access network device by using the signal sending indication information,
the UE of the first symbol and/or the symbol that is comprised in the second symbol
set; or
preconfiguring, by the access network device, the first symbol and/or the symbol that
is comprised in the second symbol set for the UE.
13. The method according to claim 11, wherein the method further comprises:
sending, by the access network device, first configuration information to the UE,
wherein the first configuration information comprises indication information of a
first symbol set and/or a candidate symbol set group, the first symbol set comprises
at least one candidate symbol of the first symbol, and the candidate symbol set group
comprises at least one candidate symbol set of the second symbol set.
14. The method according to any one of claims 11 to 13, wherein the first symbol is any
candidate symbol comprised in the first symbol set, and the first symbol set comprises
at least one of the following candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
15. The method according to any one of claims 11 to 14, wherein the second symbol set
is any candidate symbol set comprised in the candidate symbol set group, and any candidate
symbol set in the candidate symbol set group comprises K consecutive symbols, wherein
K is a positive integer.
16. The method according to claim 15, wherein a value of K is 14, 13, 12, or 11.
17. The method according to claim 15 or 16, wherein the candidate symbol set group comprises
at least one of the following candidate symbol sets:
a first candidate symbol set consisting of the 1st symbol to the last but three symbol of the uplink subframe;
a second candidate symbol set consisting of the 2nd symbol to the last but two symbol of the uplink subframe;
a third candidate symbol set consisting of the 3rd symbol to the last but one symbol of the uplink subframe;
a fourth candidate symbol set consisting of the 4th symbol to the last symbol of the uplink subframe;
a fifth candidate symbol set consisting of the 1st symbol to the last but two symbol of the uplink subframe;
a sixth candidate symbol set consisting of the 2nd symbol to the last but one symbol of the uplink subframe;
a seventh candidate symbol set consisting of the 3rd symbol to the last symbol of the uplink subframe;
an eighth candidate symbol set consisting of the 1st symbol to the last but one symbol of the uplink subframe;
a ninth candidate symbol set consisting of the 2nd symbol to the last symbol of the uplink subframe; and
a tenth candidate symbol set consisting of all symbols of the uplink subframe.
18. The method according to any one of claims 11 to 17, wherein if the first symbol is
the first candidate symbol, the second symbol set comprises A consecutive symbols,
wherein a value of A is any one of 11, 12, or 13; and/or
if the first symbol is the second candidate symbol, the second symbol set comprises
B consecutive symbols, wherein a value of B is either of 11 or 12; and/or
if the first symbol is the third candidate symbol, the second symbol set comprises
C consecutive symbols, wherein a value of C is any one of 11, 12, or 13; and/or
if the first symbol is the fourth candidate symbol, the second symbol set comprises
D consecutive symbols, wherein a value of D is either of 11 or 12; and
the first candidate symbol is the 1st symbol of the uplink sub frame;
the second candidate symbol is the 2nd symbol of the uplink sub frame;
the third candidate symbol is the last symbol of the uplink subframe; and
the fourth candidate symbol is the last but one symbol of the uplink subframe.
19. The method according to any one of claims 11 to 18, wherein if the first symbol is
the first candidate symbol, the second symbol set is any one of the third candidate
symbol set, the sixth candidate symbol set, the seventh candidate symbol set, and
the ninth candidate symbol set; and/or
if the first symbol is the second candidate symbol, the second symbol set is either
of the seventh candidate symbol set and the fourth candidate symbol set; and/or
if the first symbol is the third candidate symbol, the second symbol set is one of
the second candidate symbol set, the fifth candidate symbol set, the sixth candidate
symbol set, and the eighth candidate symbol set; and/or
if the first symbol is the fourth candidate symbol, the second symbol set is either
of the first candidate symbol set and the fifth candidate symbol set; and
the first candidate symbol is the 1st symbol of the uplink subframe;
the second candidate symbol is the 2nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe;
the fourth candidate symbol is the last but one symbol of the uplink subframe;
the first candidate symbol set consisting of the 1st symbol to the last but three symbol of the uplink subframe;
the second candidate symbol set consisting of the 2nd symbol to the last but two symbol of the uplink subframe;
the third candidate symbol set consisting of the 3rd symbol to the last but one symbol of the uplink subframe;
the fourth candidate symbol set consisting of the 4th symbol to the last symbol of the uplink subframe;
the fifth candidate symbol set consisting of the 1st symbol to the last but two symbol of the uplink subframe;
the sixth candidate symbol set consisting of the 2nd symbol to the last but one symbol of the uplink subframe;
the seventh candidate symbol set consisting of the 3rd symbol to the last symbol of the uplink subframe;
the eighth candidate symbol set consisting of the 1st symbol to the last but one symbol of the uplink subframe; and
the ninth candidate symbol set consisting of the 2nd symbol to the last symbol of the uplink subframe.
20. A terminal, comprising:
a receiving module, configured to receive signal sending indication information that
is sent by an access network device for an uplink subframe, wherein the signal sending
indication information is used to instruct the terminal UE to send a sounding reference
signal SRS in a first symbol of the uplink subframe, and/or used to instruct the UE
to send a PUSCH in a symbol that is comprised in a second symbol set of the uplink
subframe; and
a sending module, configured to send an SRS and/or a PUSCH in the uplink subframe
based on the signal sending indication information.
21. The terminal according to claim 20, wherein the first symbol and/or the symbol that
is comprised in the second symbol set are/is sent to the UE by the access network
device by using the signal sending indication information; or
the first symbol and/or the symbol that is comprised in the second symbol set are/is
preconfigured for the UE by the access network device.
22. The terminal according to claim 20, further comprising a processing module, configured
to:
determine first configuration information, wherein the first configuration information
comprises indication information of a first symbol set and/or a candidate symbol set
group;
determine the first symbol in the first symbol set based on the signal sending indication
information; and/or
determine the second symbol set in the candidate symbol set group based on the signal
sending indication information.
23. The terminal according to claim 22, wherein the receiving module is further configured
to receive the first configuration information sent by the access network device;
or
the processing module is further configured to: determine a type of the uplink subframe
based on the signal sending indication information, and determine the first configuration
information corresponding to the type of the uplink subframe based on a preset correspondence
between the type of the uplink subframe and the first configuration information.
24. The terminal according to any one of claims 20 to 23, wherein the first symbol is
any candidate symbol comprised in the first symbol set, and the first symbol set comprises
at least one of the following candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
25. The terminal according to any one of claims 20 to 24, wherein the second symbol set
is any candidate symbol set comprised in the candidate symbol set group, and any candidate
symbol set in the candidate symbol set group comprises K consecutive symbols, wherein
K is a positive integer.
26. The terminal according to claim 25, wherein a value of K is 14, 13, 12, or 11.
27. The terminal according to claim 25 or 26, wherein the candidate symbol set group comprises
at least one of the following candidate symbol sets:
a first candidate symbol set consisting of the 1st symbol to the last but three symbol of the uplink subframe;
a second candidate symbol set consisting of the 2nd symbol to the last but two symbol of the uplink subframe;
a third candidate symbol set consisting of the 3rd symbol to the last but one symbol of the uplink subframe;
a fourth candidate symbol set consisting of the 4th symbol to the last symbol of the uplink subframe;
a fifth candidate symbol set consisting of the 1st symbol to the last but two symbol of the uplink subframe;
a sixth candidate symbol set consisting of the 2nd symbol to the last but one symbol of the uplink subframe;
a seventh candidate symbol set consisting of the 3rd symbol to the last symbol of the uplink subframe;
an eighth candidate symbol set consisting of the 1st symbol to the last but one symbol of the uplink subframe;
a ninth candidate symbol set consisting of the 2nd symbol to the last symbol of the uplink subframe; and
a tenth candidate symbol set consisting of all symbols of the uplink subframe.
28. The terminal according to any one of claims 20 to 27, wherein if the first symbol
is the first candidate symbol, the second symbol set comprises A consecutive symbols,
wherein a value of A is any one of 11, 12, or 13; and/or
if the first symbol is the second candidate symbol, the second symbol set comprises
B consecutive symbols, wherein a value of B is either of 11 or 12; and/or
if the first symbol is the third candidate symbol, the second symbol set comprises
C consecutive symbols, wherein a value of C is any one of 11, 12, or 13; and/or
if the first symbol is the fourth candidate symbol, the second symbol set comprises
D consecutive symbols, wherein a value of D is either of 11 or 12; and
the first candidate symbol is the 1st symbol of the uplink subframe;
the second candidate symbol is the 2nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe; and
the fourth candidate symbol is the last but one symbol of the uplink subframe.
29. The terminal according to any one of claims 20 to 28, wherein if the first symbol
is the first candidate symbol, the second symbol set is any one of the third candidate
symbol set, the sixth candidate symbol set, the seventh candidate symbol set, and
the ninth candidate symbol set; and/or
if the first symbol is the second candidate symbol, the second symbol set is either
of the seventh candidate symbol set and the fourth candidate symbol set; and/or
if the first symbol is the third candidate symbol, the second symbol set is one of
the second candidate symbol set, the fifth candidate symbol set, the sixth candidate
symbol set, and the eighth candidate symbol set; and/or
if the first symbol is the fourth candidate symbol, the second symbol set is either
of the first candidate symbol set and the fifth candidate symbol set; and
the first candidate symbol is the 1st symbol of the uplink subframe;
the second candidate symbol is the 2nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe;
the fourth candidate symbol is the last but one symbol of the uplink subframe;
the first candidate symbol set consists of the 1st symbol to the last but three symbol of the uplink subframe;
the second candidate symbol set consists of the 2nd symbol to the last but two symbol of the uplink subframe;
the third candidate symbol set consists of the 3rd symbol to the last but one symbol of the uplink subframe;
the fourth candidate symbol set consists of the 4th symbol to the last symbol of the uplink subframe;
the fifth candidate symbol set consists of the 1st symbol to the last but two symbol of the uplink subframe;
the sixth candidate symbol set consists of the 2nd symbol to the last but one symbol of the uplink subframe;
the seventh candidate symbol set consists of the 3rd symbol to the last symbol of the uplink subframe;
the eighth candidate symbol set consists of the 1st symbol to the last but one symbol of the uplink subframe; and
the ninth candidate symbol set consists of the 2nd symbol to the last symbol of the uplink subframe.
30. An access network device, comprising:
a sending module, configured to send signal sending indication information for an
uplink subframe, wherein the signal sending indication information is used to instruct
a terminal UE to send a sounding reference signal SRS in a first symbol of the uplink
subframe, and/or used to instruct the terminal UE to send a PUSCH in a symbol that
is comprised in a second symbol set of the uplink subframe; and
a receiving module, configured to receive an SRS and/or a PUSCH that are/is sent by
the UE in the uplink subframe based on the signal sending indication information.
31. The access network device according to claim 30, further comprising a processing module,
specifically configured to:
notify, by using the signal sending indication information, the UE of the first symbol
and/or the symbol that is comprised in the second symbol set; or
preconfigure the first symbol and/or the symbol that is comprised in the second symbol
set for the UE.
32. The access network device according to claim 30, wherein the sending module is further
configured to:
send first configuration information to the UE, wherein the first configuration information
comprises indication information of a first symbol set and/or a candidate symbol set
group, the first symbol set comprises at least one candidate symbol of the first symbol,
and the candidate symbol set group comprises at least one candidate symbol set of
the second symbol set.
33. The access network device according to any one of claims 30 to 32, wherein the first
symbol is any candidate symbol comprised in the first symbol set, and the first symbol
set comprises at least one of the following candidate symbols:
a first candidate symbol being the 1st symbol of the uplink subframe;
a second candidate symbol being the 2nd symbol of the uplink subframe;
a third candidate symbol being the last symbol of the uplink subframe;
a fourth candidate symbol being the last but one symbol of the uplink subframe;
a fifth candidate symbol being a symbol corresponding to a DMRS in the 1st timeslot of the uplink subframe;
a sixth candidate symbol being a symbol corresponding to a DMRS in the 2nd timeslot of the uplink subframe; and
a seventh candidate symbol being the last symbol in the 1st timeslot of the uplink subframe.
34. The access network device according to any one of claims 30 to 33, wherein the second
symbol set is any candidate symbol set comprised in the candidate symbol set group,
and any candidate symbol set in the candidate symbol set group comprises K consecutive
symbols, wherein K is a positive integer.
35. The access network device according to claim 34, wherein a value of K is 14, 13, 12,
or 11.
36. The access network device according to claim 34 or 35, wherein the candidate symbol
set group comprises at least one of the following candidate symbol sets:
a first candidate symbol set consisting of the 1st symbol to the last but three symbol of the uplink subframe;
a second candidate symbol set consisting of the 2nd symbol to the last but two symbol of the uplink subframe;
a third candidate symbol set consisting of the 3rd symbol to the last but one symbol of the uplink subframe;
a fourth candidate symbol set consisting of the 4th symbol to the last symbol of the uplink subframe;
a fifth candidate symbol set consisting of the 1st symbol to the last but two symbol of the uplink subframe;
a sixth candidate symbol set consisting of the 2nd symbol to the last but one symbol of the uplink subframe;
a seventh candidate symbol set consisting of the 3rd symbol to the last symbol of the uplink subframe;
an eighth candidate symbol set consisting of the 1st symbol to the last but one symbol of the uplink subframe;
a ninth candidate symbol set consisting of the 2nd symbol to the last symbol of the uplink subframe; and
a tenth candidate symbol set consisting of all symbols of the uplink subframe.
37. The access network device according to any one of claims 30 to 36, wherein if the
first symbol is the first candidate symbol, the second symbol set comprises A consecutive
symbols, wherein a value of A is any one of 11, 12, or 13; and/or
if the first symbol is the second candidate symbol, the second symbol set comprises
B consecutive symbols, wherein a value of B is either of 11 or 12; and/or
if the first symbol is the third candidate symbol, the second symbol set comprises
C consecutive symbols, wherein a value of C is any one of 11, 12, or 13; and/or
if the first symbol is the fourth candidate symbol, the second symbol set comprises
D consecutive symbols, wherein a value of D is either of 11 or 12; and
the first candidate symbol is the 1st symbol of the uplink subframe;
the second candidate symbol is the 2nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe; and
the fourth candidate symbol is the last but one symbol of the uplink subframe.
38. The access network device according to any one of claims 30 to 37, wherein
if the first symbol is the first candidate symbol, the second symbol set is any one
of the third candidate symbol set, the sixth candidate symbol set, the seventh candidate
symbol set, and the ninth candidate symbol set; and/or
if the first symbol is the second candidate symbol, the second symbol set is either
of the seventh candidate symbol set and the fourth candidate symbol set; and/or
if the first symbol is the third candidate symbol, the second symbol set is one of
the second candidate symbol set, the fifth candidate symbol set, the sixth candidate
symbol set, and the eighth candidate symbol set; and/or
if the first symbol is the fourth candidate symbol, the second symbol set is either
of the first candidate symbol set and the fifth candidate symbol set; and
the first candidate symbol is the 1st symbol of the uplink subframe;
the second candidate symbol is the 2nd symbol of the uplink subframe;
the third candidate symbol is the last symbol of the uplink subframe;
the fourth candidate symbol is the last but one symbol of the uplink subframe;
the first candidate symbol set consists of the 1st symbol to the last but three symbol of the uplink subframe;
the second candidate symbol set consists of the 2nd symbol to the last but two symbol of the uplink subframe;
the third candidate symbol set consists of the 3rd symbol to the last but one symbol of the uplink subframe;
the fourth candidate symbol set consists of the 4th symbol to the last symbol of the uplink subframe;
the fifth candidate symbol set consists of the 1st symbol to the last but two symbol of the uplink subframe;
the sixth candidate symbol set consists of the 2nd symbol to the last but one symbol of the uplink subframe;
the seventh candidate symbol set consists of the 3rd symbol to the last symbol of the uplink subframe;
the eighth candidate symbol set consists of the 1st symbol to the last but one symbol of the uplink subframe; and
the ninth candidate symbol set consists of the 2nd symbol to the last symbol of the uplink subframe.